CN107022567A - 提高植物水分利用效率的方法和手段 - Google Patents
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Abstract
本发明涉及提高植物水分利用效率的方法和手段。本发明涉及通过对植物内部基因表达的操作,获得所需植物表型的方法。该方法涉及抑制PK220基因的表达水平或者活性的手段,相对于野生型对照植物,其中所需的表型例如水分利用率有所提高。本发明还涉及到核酸序列以及有用的构建物等方法,以及构建和分离具有降低的PK220表达或活性的植物的方法。
Description
本申请是申请日为2009年6月12目的中国专利申请200980131323.1“提高植物水分利用效率的方法和手段”的分案申请。
相关申请参考
本申请要求2008年6月13日提出的U.S.S.N.61/132,067的权益,其内容在这里全部纳入参考。
技术领域
本发明是在植物分子生物学领域,涉及到有新的表型的转基因植物,生产此类植物的方法和以此方法生产有用的多核苷酸和多肽。更明确的是,本发明涉及抑制蛋白激酶以及具有抑制蛋白激酶活性的转基因植物。
背景技术
水是植物的生存,生长和繁殖必不可少的。经过光合作用的二氧化碳的同化直接关系到水通过气孔的流失。与生物质生产密切相关的作物生产力,依赖于植物水分利用效率(WUE),尤其是在水分限制的条件下(Passioura 1994 and Sinclair 1994,inPhysiology and Determination of Crop Yield)。植物的生长周期中的水分利用效率,可使用每单位水蒸腾量生成的生物质量比例进行计算(Sinclair 1994)。水分利用效率瞬时测量亦可通过使用气体交换测量法测定二氧化碳的吸收与蒸腾的比率来确定(Farquharand Sharkey 1994,in Physiology and Determination of Crop Yield)。由于作物产量和水分利用效率密切相关,人们已作出许多努力,来学习和理解这种关系以及密切相关的基因组成。为了实现作物产能和产量的最大化,人们努力设法提高植物的水分利用效率(Condon et al.,2002,Araus et al.,2002,Davies et al.,2002)。较高的水分利用效率可以通过提高生物质生产量和二氧化碳同化或通过减少蒸腾水分流失来实现。减少蒸腾作用,尤其是在非限水环境下,可能随之降低生长速度,从而减少作物产量。这就带来了一个两难选择,如何在水有限的条件下提高作物的产能和产量,同时在灌溉水或非限水条件下还能保持产量(Condon et al.,2002)。
对于水分利用效率的改善,到目前为止,都采用植物育种方法进行,藉此,将水分利用率较高的品种与高产能但水分利用率较低的品种进行杂交,在限水条件下以期改善作物的产量(Condon et al.,2002,Araus et al.,2002)。使用数量性状定位(QTL)的方法来确定水分利用效率的组成是历史上最普遍的方法(Mian et al.,1996,Martin et al.,1989,Thumma et al.,2001,Price et al.,2002),最近,人们尝试通过分子遗传学手段来构建优良植物品种。
第一个与水分利用效率相关的基因是ERECTA。ERECTA基因是在花序发育和器官形态中作为功能基因首次被发现的(Torii el al.,1996)。后来通过QTL定位发现,它是蒸腾效率的一个重要贡献因子,蒸腾效率被定义为每吸收一个二氧化碳蒸腾的水,在拟南芥中,作为一个与水分利用效率相反的指标(Masle el al.,2005)。ERECTA基因编码一个假定的富含亮氨重复的类受体激酶(LRR-RLK)。尽管有人提出,至少在某种程度上,其对气孔密度,表皮细胞扩张,叶肉细胞增殖和细胞间的联系有影响,但LRR-RLK的调控机制有待理解。在eracta突变体中,使用野生型ERECTA进行互补,可以恢复正常的蒸腾效率。然而,不能确定的是,在转基因拟南芥中过表达ERECTA是否会降低蒸腾效率或提高水分利用效率。这是唯一的报告,显示植物类受体激酶与蒸腾效率或水分利用效率相关。
另一个与水分利用效率相关的拟南芥基因是HARDY基因,是通过对活化标签突变体库的表型筛选而发现的(Karaba el al.,2007)。在水稻中过表达HARDY,通过提高光合吸收和减少蒸腾,最终导致了水分利用效率的改善。增强表达HARDY的转基因水稻在最佳水环境下发芽生物量有所增强,在限水条件下出根生物量有所增强。过量表达HARDY,在拟南芥中产生了含有更多的叶肉细胞的厚叶片,在水稻中提高了叶片和束叶细胞的生物量。这些修饰有助于提高光合活性和效率(Karaba et al.,2007)。
蛋白激酶是一个大家族酶系,通过添加磷酸基团(磷酸化)修饰蛋白除。在所有真核基因中,蛋白激酶约占2%,其中许多介导了真核细胞对外界刺激的响应。所有的单亚基蛋白激酶在羧基端附近含有一个共同的催化结构域,而氨基端起着调节作用。
植物类受体激酶为丝氨酸/苏氨酸蛋白激酶,其含有,氨基端的一段预知信号肽,一段跨膜域和一段胞浆激酶域。在拟南芥中,有超过610种的潜在编码类受体激酶(Shiuand Bleecker 2001)。类受体激酶往往是信号级联反应的一部分。他们在信号级联反应中解释胞外信号,通过配体结合,磷酸化目标,从而影响到下游的细胞过程,如基因的表达(Hardie 1999)。
可被操作用来提供有益特征的基因的鉴定是非常可取的。使用已确定的基因来评价所需要的特征也是同样的方法和手段。在TAIR数据库中被定义为At2g25220的类受体激酶是一种丝氨酸/苏氨酸激酶,是拟南芥中超过600名的成员的类受体激酶基因大家族中的一员(Shiu et al.,2001)。然而,除了作为一种激酶进行了序列的注释,并没有对At2g25220基因进行功能和作用的披露。在本发明中,确定了高水分利用效率基因(HWE),当其表达或活性受到抑制时,会导致有益的表型,例如,相对于用水量,提高了植物生物量的积累。在限水条件或非限水条件下均可发生这种情况,并且确保更好的增长,因此植物有更大的生产率。
发明内容
本发明是基于以下发现,PK220基因的突变导致了植物表型的改变,例如,与未突变的植物相比,水分利用效率提高,耐旱性增强,对低温的敏感性降低、低氮条件下幼苗生长抑制性降低等等。
更具体地说,本发明涉及一种突变植物的鉴定,包含PK220基因的突变,在这里也称为HWE基因。该PK220基因是一种类受体蛋白激酶。在植物中抑制PK220基因的表达或活性提供了有益的表型,例如改进了植物的水分利用效率。改善的植物水分利用效率表型导致植物耐旱性增强。
在一方面,发明提供了一种获得转基因植物的方法,通过使用载体来转化植物、植物组织培养物、或植物细胞,载体中含有一种核酸构建物能够抑制PK220基因的表达或活性,从而获得PK220表达或活性水平降低的植物、组织培养物或植物细胞。从植物组织培养物或植物细胞中培育或再生植物,其中水分利用效率提高的植物被制备。
因此,本发明提供了一种具有改良属性的植物的生产方法,其中所述方法包括,抑制内源性PK220基因的表达或活性,其中所产生的植物具有有益的表型或改良的属性。在一个具体实施方案中,本发明提供了一种用于生产水分利用效率提高的植物的方法,其中所述方法包括,转基因植物的形成以及使用所述方法进行植物基因组的修饰。
水分利用效率是指,当使用重力法测量时,生成的生物质的总量与单位水蒸腾量之间的比率,以及当使用气体交换定量法测量时,光合作用速率与叶片或枝条的蒸腾速率之间的比率。本文中所使用的术语“提高的水分利用效率“指的是,当与相应的野生型植物的水分利用效率相比时,植物水分利用效率是野生型的2,4,5,6,8,10,20或更多倍。举例来说,具有提高的水分利用效率的植物相比野生型植物,可能有5%,10%,15%,20%,25%,30%,40%,50%,60%,70%,75%或更高的水分利用效率。
本发明的方法包括抑制或降低内源性基因的表达或活性,例如PK220,其中产生的植物具有有益的表型或改良的属性,例如提高的水分利用效率。一方面,本发明提供了一种植物的生产方法,该植物相对于野生型植物有提高的水分利用效率,通过在植物细胞中引入一个核酸构建物来抑制或降低PK220的表达或活性。举例来说,相对于野生型植物,具有提高的水分利用效率的植物由以下几步产生:a)提供一种抑制PK220的活性的核酸构建物,该核酸构建物含有一个联结于其上的合适启动子;b)将核酸构建物掺入到载体中;c)将该载体转化至植物、组织培养物或者植物细胞中,来制备具有PK220活性降低的植物、组织培养物或者植物细胞;d)从组织培养物或植物细胞中培育或再生植物,在此过程中制备该植物,与野生型植物相比,该植物的水分利用效率有所提高。该构建物包括一个启动子,例如组成型启动子、组织特异性启动子或者诱导性启动子。优选的是,组织特异性启动子为根茎启动子。优选的诱导型启动子为干旱诱导型启动子。
术语“核酸构建物“是指一个全长基因序列或部分序列,其中一部分是最好至少有19,20,21,22,23,24,25,30,40,50,60,70,75,80,90,100或150个核苷酸长,或其互补体。或者,它可能是一个寡核苷酸,单链或双链,由DNA或RNA或DNA-RNA双链组成。在一个具体实施方案中,核酸构建物包含PK220全长基因序列,或其中一部分,其中的一部分PK220序列至少是19,20,21,22,23,24,25,30,40,50,60,70,75,80,90,100或150个核苷酸长,或其互补体。
本发明也提供了一种转基因植物,具有有益的表型或者改良的属性,例如提高的水分利用效率,通过本文描述的方法制备。
在另一个方面,本发明提供了一种植物,该植物在PK220基因中具有一个非天然存在的突变,其中,所述植物具有降低的PK220表达或活性,并且与野生型对照相比,具有提高的水分利用效率。PK220的表达或活性降低,是指与野生型PK220相比,在DNA、RNA或者蛋白质水平上,降低2,3,4,5,6,7,8,9,10,15,20,25,30,40,50,60,或75倍或更多,或者与野生型PK220活性相比,降低2,3,4,5,6,7,8,9,10,15,20,25,30,40,50,60,或75倍。PK220活性包括但不限于多肽底物的丝氨酸和/或苏氨酸残基处的激酶活性,那是它参与磷酸化反应的位置。
本发明进一步提供了转基因种子,由本发明的转基因植物制备,其中种子产生的植物,具有有益的表型或者改良的属性,例如与野生型植物相比,具有提高的水分利用效率。
在另一实施例中,发明提供了核酸用于在植物细胞中表达该核酸,来制备转基因植物,该植物具有有益的表型或者改良的属性,例如提高的水分利用效率。
在本发明中某些方面发现使用的编码野生型PK220基因或其中的一部分的模板序列由以下序列号描述:SEQ ID 1,7,9,11,12,13,24,25,27,29,31,33,35,37,39,41,43,45,47,49,51,53,55,57,59,61,63,65,67,69,71,73,75,77,79,81,83,84,86,88,90,92,94,96,98,100,153,161和193。编码突变的PK220基因由SEQ ID 3和5描述。用于下调PK220表达和活性的对构建物有用的模板序列由以下序列号描述:SEQ ID 12,13,147,149,153,161,168和174。本发明进一步提供了一些组合,包含本发明的核酸,用于在植物中进行表达,制备所述的转基因植物。
除非另有界定,此处使用的所有的技术和科学术语,具有与本发明所属领域中技术人员所熟知的含义相同的含义。虽然与此处所述类似的或相同的方法和材料可用于实践或检验本发明,合适的方法和材料如下所述。所有出版物,专利申请,专利和本文提及的其他文献全部引用作为参考。在冲突的情况下,以本发明说明书,包括定义,为准。此外,材料,方法及实例仅用于阐述目的而作为对本发明的限制。
本发明其他的特点和优势,将是显而易见的,并由下面的详细说明书和权利要求书涵盖。
具体实施方式
除非另有界定,此处使用的所有的技术和科学术语,具有与本发明所属领域中技术人员所熟知的含义相同的含义。虽然与此处所述类似的或相同的方法和材料可用于实践或检验本发明,合适的方法和材料如下所述。所有出版物,专利申请,专利和本文提及的其他文献全部引用作为参考。在冲突的情况下,以本发明说明书,包括定义,为准。此外,材料,方法及实例仅用于阐述目的而作为对本发明的限制。
为方便起见,在本发明的进一步说明前,这里先进行用于说明、示例及要求的特定术语的规定。这些定义应当由本领域技术人员很容易阅读并理解。
“启动子序列”或“启动子”,是指在植物细胞中,能够诱导可操作基因序列转录的核酸序列。启动子包括,例如(但不限于)组成型启动子、组织特异性启动子,例如根茎启动子、诱导型启动子,例如干旱诱导型启动子、或内源性启动子,例如与兴趣基因即PK220基因相关的启动子。
术语“表达盒”是指载体构建物,其中一个基因或核酸序列被转录。此外,所表达的基因可能被翻译成多肽。
术语“表达”或“过表达”可以互换使用,都指的是,基因的表达也就是转基因的表达。相对于野生型细胞,细胞中的表达总水平可升高。
所谓“非天然存在突变″指的是任何方法,在一种植物或植物种群引入基因突变。例如,化学诱变,如磺酸甲乙酯或甲磺酸乙酯,快中子诱变,DNA插入诱变如T-DNA插入或定点突变的方法。
术语“干旱胁迫″是指这样一种情况,相对水非受限情况,植物生长或产量受到抑制。术语“水分-胁迫”与干旱水分胁迫同义可互换。
术语“耐旱性”是指植物能够超越野生型植物的能力,在干旱胁迫条件下,或限水条件下,或相对于野生型植物在成长和发展过程中使用更少的水。
术语“水分利用效率”是一个比率表达式,当使用重力法测量时,指的是生成的生物质的总量与单位水蒸腾量之间的比率,当使用气体交换定量法测量时,指的是光合作用速率与叶片或枝条的蒸腾速率之间的比率。
术语“干重”是指已被干燥去除大部分细胞水的植物组织,与术语“生物质”这个词同义可互换。
术语“空”定义为,同胞基因分离的转基因线,已经失去掺入的转基因,因此作为对照线。
说明书中使用了各种标准缩写,例如g,克;WT,野生型;DW,干重;WUE,水分利用效率;d,天。
术语“hwe116”指的是含有PK220基因突变的植物。
HWE基因指的是PK220基因序列,由PK220基因编码的蛋白质指的是PK220多肽或蛋白质。术语HWE和PK220是同义词。
术语“PK220核酸″是指至少有一部分PK220核酸。同样的,术语“PK220蛋白质”或“PK220多肽”是指至少有一部分蛋白质。一部分对于核酸来说是指至少21个核苷酸长,对于蛋白质或多肽来说是至少有7个氨基酸。术语“AtPK220”指的是拟南芥PK220基因,术语“BnPK220”指的是一个甘蓝型油菜PK220基因。
本发明部分地取决于有改良农艺属性植物的发现基础上的,例如,相对于野生型对照,水分利用效率提高,耐旱性增加,敏感性低温降低以在低氮条件下幼苗生长抑制降低。有益表型所对应的基因已被确定并证明是一种抑制PK220基因。
制备具有提高的水分利用效率的植物的方法在本说明书中详细进行了描述,包括突变植物、转基因植物、或者遗传修饰植物。具体来说,本发明确定了PK220基因的功能,当其表达或者活性受到抑制时,可制备具有有益表型的植物。
两个或两个以上序列同源性的确定
要确定两个氨基酸序列或两个核酸序列之间的同源性百分比,为实现最佳比较目的,所有序列被对齐。(例如,可以在用于最优对齐比较的两个序列任一个中引入间隔)。将氨基酸残基或相应的氨基酸位点的核苷酸或核苷酸位点进行比较。当第一个序列中的某个位点被第二个序列中相应位置的同样的氨基酸残基或核苷酸占据,那么这两个分子在此处是同源的(即这里所用的氨基酸或核酸“同源性“相当于氨基酸或核酸的“一致性“)。
核酸序列同源性,可以两个序列之间一致性的程度来确定。同源性也可使用本领域熟知的计算机程序来确定,如GCG程序包提供的GAP软件,见Needleman and Wunsch(1970)。使用GCG-GAP软件进行如下设定用于核酸序列比较:GAP创建点为5.0,GAP延伸点为0.3,类似的核酸序列的编码区域参照上面提到的,与序列号SEQ ID1显示的DNA序列的编码序列部分一致性程度最好至少是70%,75%,80%,85%,90%,95%,98%,或99%。
术语“序列一致性”指的是当进行特定区域比较时,在“残基-残基“基础上两个多核苷酸或多肽序列的一致性程度。术语“序列一致性百分比”通过所对比的区域中,比较两个最佳相似序列来计算,测定两个序列中相同核酸碱基(例如A,T,C,G,U,或I,在核酸的情况下)同时存在的位点的数量来得出匹配位点的数量,除以比较区域(例如窗口尺寸)的总位点数,然后将结果乘以100得出序列一致性百分比。这里所用的术语“实质同一性”是指一个多核苷酸序列特征,其中与对照区域的参考序列相比,该多核苷酸包括的序列中至少有80%的序列一致性,最好是至少85%,经常是90-95%,更常见的是至少99%。术语“阳性残基百分比”通过所对比的区域中,比较两个最佳相似序列来计算,测定两个序列中相同和保守氨基酸残基,如上所述,同时存在的位点的数量来得出匹配位点的数量,除以比较区域(例如窗口尺寸)的总位点数,然后将结果乘以100得出阳性残基百分比。
内源性PK220表达及活性的抑制
本发明的一方面,是关于抑制或降低PK220基因的表达和活性的方法和手段,任意地,导致PK220蛋白表达和活性的抑制或降低。术语“PK220表达或活性”包括抑制或减少这两个层次。PK220的表达或活性降低,是指与野生型PK220相比,在DNA、RNA或蛋白质水平上降低2,3,4,5,6,7,8,9,10,15,20,25,30,40,50,60或75倍或更多,或者与野生型PK220活性相比,PK220蛋白活性降低2,3,4,5,6,7,8,9,10,15,20,25,30,40,50,60或75倍。PK220活性包括但不限于多肽底物的丝氨酸和/或苏氨酸残基处的激酶活性,那是它参与磷酸化反应的位置。测定丝氨酸/苏氨酸激酶活性的方法是本领域人员众所周知的。
对于本领域的技术人员来说,目前已有很多方法来实现这种抑制作用,通过影响基因表达途径中各种步骤,例如转录调控,后转录和翻译调控。这些方法包括但不限于,反义核酸的方法,RNA干扰构建物,包括所有的发夹结构和有用的RNAi构建物,通过双链RNA指导的DNA甲基化抑制或者通过mRNA的降解抑制,或翻译抑制,小RNA(miRNA),包括人工miRNA的(amiRNA)(Schwab et al.,2006)的技术,突变和TILLING方方法,在体内特定位点突变技术以及显性/隐性抑制方法。
基因抑制的一种优选方法包括RNA抑制(RNAi)技术也被称为发夹结构。拟抑制的基因的一部分被使用,并以正义和反义方向克隆,在正义和反义部分具有一定的间隔。该部分基因的大小应至少为20个核苷酸长,间隔可能为13个核苷酸长(Kennerdell andCarthew,2000),可能是内含子序列,编码或非编码序列。
反义是一种常见的方法,即目标基因,或其中一部份,以一种反义方向表达,导致内源基因表达和活性的抑制。反义部分不需要一个全长基因,也不需要100%相同。只要反义序列与内源目的基因至少大约70%或更多相同,核苷酸长度至少为19,20,21,22,23,24,25,30,40,50,60,70,75,80,90,100,或150。优选的是,核苷酸长度为50或更长,将取得预期的抑制作用。
在制备构建体时,编码野生型PK220基因及其中的部分序列对于PK220抑制是有用的,包括以下序列,例如,SEQ ID序列号:1,7,9,11,12,13,24,25,27,29,31,33,35,37,39,41,43,45,47,49,51,53,55,57,59,61,63,65,67,69,71,73,75,77,79,81,83,84,86,88,90,92,94,96,98,100,153,161和193。为了下调PK220的表达或活性,对于构建体有用的模版序列由以下序列号所述:SEQ ID 12,13,147,149,153,161,168和174。
当使用反义策略下调,抑制内源基因的活性可有选择性的针对特定基因或所选的基因群,通过合适的选择用于反义表达的片段或部分基因。选择目的基因序列中存在,而相关基因群(非目的基因)中不存在或与非目的序列保守性小于70%的序列将会导致特异性基因抑制作用。
另外,amiRNA抑制可以用来抑制基因的表达和活性,以一种比其他RNAi方法更特异的方式。与需要小分子RNA和目标mRNA之间完美匹配的siRNA相反,amiRNA允许多达5个不匹配,只要不超过2个连续不匹配。amiRNA的构建需要满足一定的标准,如Schawab et al.(2006)所述。这就提供了一种下调目的基因表达或活性的方法,使用的基因片段包含PK220中的至少21个核苷酸序列。
显性/阴性抑制类似于生化反应中的竞争性抑制。修饰的或突变的缺乏全功能的多肽的表达会与野生型或内源性多肽竞争,从而降低总的基因/蛋白的活性。例如,一个表达的蛋白质可能会结合到蛋白复合体或酶亚基上从而产生一个非功能复合物。或者,表达的蛋白可能与底物结合,但没有活性去执行天然的功能。非活性蛋白的表达水平足以降低或抑制整体功能。
表达PK220基因产生缺失活性的PK220蛋白可用于基因活性的显性/阴性下调。这类似于竞争性抑制。例如,产生的PK220蛋白可能与目的分子联合或绑定,但缺乏内源性活性。这样的无活性PK220的一个例子是,分离自hwe116突变体的AtPK220序列,如序列号SEQID NO:3所示。目的分子可以是核酸序列的相互作用蛋白。在这种方式下,内源性蛋白PK220被有效稀释,下游响应将被衰减。
体内位点的特异性突变是可得到的,据此,可以在细胞的基因组中引入一个突变来产生特异性突变。该方法可见Dong et al.(2006)详细描述,或者在美国专利申请公布号20060162024中,其中提到了寡核苷酸定向基因修复的方法。另外一种方法,可以利用嵌合RNA/DNA寡核苷酸,如Beetham(1999)所描述。因此,可能在细胞的内源性基因中产生未成熟终止密码,从而产生一种特异性无效突变。另外,突变可能会干扰初始转录的拼接,从而产生无翻译能力的mRNA,或者是一种产生可变多肽的mRNA,该多肽不具备内源性活性。优选的突变,能够造成PK220表达或活性减少或降低,包括,在核酸位点874处的C到T的转变,与序列号SEQ ID NOs:1或3一致,或者核酸突变导致了氨基酸位点292处的氨基酸转变,从亮氨酸(L)编码(CTT)变成了苯丙氨酸(F)编码(TTT),与序列号SEQ ID NOs:2或4一致。
TILLING是一种在已知基因中分离突变的方法,来自于EMS-诱变库群。使用(Greene et al.,2003)所详细描述的方法筛选诱变库群。
基因抑制的其他策略,对于本领域熟练的工作者,包括那些在这里没有讨论的以及未来发展的,都将是显而易见的。
AtPK220同源性的鉴定
拟南芥PK220(AtPK220)的同源性通过使用数据库序列搜索工具被确定,例如基本局部比对搜索工具(BLAST)(Altschul et al.,1990 and Altschul et al.,1997)。该tblastn或blastn序列分析程序使用BLOSUM-62得分矩阵进行工作(Henikoff andHenikoff,1992)。BLAST报告的输出提供一个分数,考虑到类似或相同的残基,以及为了保持序列对齐所需的任何间隙。得分矩阵指定一个分数用于对齐任何可能的序列对。P值反映的是希望看到一个分数偶然出现的次数。优选分数较高者,以及低阈值P值。这些都是序列相似性的标准。tblastn序列分析程序是用于查询数据库中的多肽序列,与核苷酸数据库中的六道翻译序列比对。选中P值小于-25,优选少于-70,更优选不到-100的,确定为同源序列(模板序列选择标准)。Blastn序列分析程序是用于查询核苷酸序列数据库中的核苷酸序列。在这种情况下,也优选得分较高者,首选P阀值小于-13,优选小于-50,更优选小于-100。
通过标准的PCR扩增技术可以分离PK220基因。使用PK220基因的保守区域引物和PCR扩增产生所需基因的片段或全长拷贝。模板可以是DNA,基因组或cDNA文库,或是RNA或mRNA,使用逆转录PCR(RtPCR)技术。保守区域,可使用如BLAST或如CLUSTALW序列对比工具来确定。合适的引物被应用,并在本申请的其他地方进行了描述。
或者,一个来自于PK220基因的序列片段被随机引物进行32P放射性标记(Sambrooket al.,1989),用于筛选植物基因组文库(模板检测核苷酸)。作为示例,根据Stockinger等人的方法,分离了来自于拟南芥,烟草,番茄,苦茴芹,甜樱桃,桃樱,黄瓜,或水稻的总植物DNA(Stockinger et al.,1996)。每种DNA样品大约取2到10微克进行限制性消化,转印至尼龙膜上(Micron Separations,Westboro,Mass)进行杂交。杂交条件为:42℃,50%甲酰胺,5×SSC,20mM磷酸缓冲液1×Denhardt’s,10%硫酸葡聚糖和100微克/毫升鲱鱼精DNA。室温下用2×SSC,0.05%肌酸钠和0.02%焦磷酸钠缓冲液低严格清洗四次,然后在55℃下使用0.2×SSC,0.05%肌酸钠和0.01%焦磷酸钠缓冲液高严格清洗,直到按照Walling等人的方法,在冲洗液中检测不到(Walling et al.,1988)。阳性分离物进行鉴定,纯化和测序。其他方法也可用于杂交,例如Clonetech公司提供的ExpressHybTM杂交溶液。
PK220重组表达载体以及宿主细胞
本发明的另一个方面涉及到载体,优选的表达载体,含有一种编码PK220蛋白质的核酸,PK220基因或基因组序列或其中的部分类似序列或其同源序列。本文中所使用的术语表达载体包括被设计用于提供核酸序列转录的载体。转录序列可以被设计用于抑制与转录序列相关的内源性表达或内源性基因的活性。或者,转录核酸不需要翻译,而是以反义或发夹下调的方法抑制内源性基因的表达。此外,转录的核酸可能被翻译成多肽或蛋白质产物。多肽可能是一个非全长,突变或修饰后的内源性蛋白的变体。本文中所使用的术语“载体”是指一种核酸分子,具有运送被链接于其上的另一种核酸的能力。一种载体类型是“质粒”,它指的是环形双链DNA,附加的DNA片段可以被连接到其中。另一种载体类型是病毒载体,其中,附加的DNA片段可以连接到病毒基因组中。某些载体能够在其被导入的宿主细胞中自主复制(例如,具有细菌复制起点的细菌载体)。其他载体整合到被导入的宿主细胞的基因组中,并因此随宿主细胞的基因组的复制而被复制。此外,某些载体能够指导被操作连入的基因的表达。这种载体,在此统称为“表达载体”。一般来说,在重组DNA技术中通用的表达载体效用往往是质粒的形式。在目前的规范中,“质粒”和“载体”可以互换使用,因为质粒是载体最常用的形式。然而,本发明旨在包括其他形式的表达载体,如病毒载体或植物转化载体,二元的或其他方式,它们提供相同的功能。
本发明的重组表达载体包括本发明中的核酸以一种合适的形式在一个宿主细胞中进行表达,这意味着重组表达载体包括一个或多个调控序列,该序列基于对用于表达的宿主细胞的选择,也就是操作链接到被表达的核酸序列上。在一个重组表达载体中,“操作链接”是为了表示插入的核苷酸序列是被链接到调控序列上,以一种允许核苷酸序列表达的方式(例如,在一种体外转录/翻译系统中或者在宿主细胞中,当载体被导入到宿主细胞中时)。
术语“调控序列”意在包括启动子,增强子和其他表达调控元件(例如,多聚腺苷酸(polyA)信号)。例如,这种调控序列在Goeddel(1990)被描述。调控序列包括那些在许多类型的宿主细胞中指导核苷酸序列进行组成型表达的序列,以及那些只在某些宿主细胞中指导核苷酸表达的序列(如组织特异性调控序列)或诱导启动子(例如,对非生物因素的响应诱导,如环境条件,热,干旱,营养状况或细胞的生理状况,或生物的例如病原响应)。合适的启动子的例子包括,例如组成型启动子,ABA诱导型启动子,组织特异性启动予以及非生物或生物诱导的启动子。这对于设计表达载体的技术人员将是不胜感激的,他们可以依靠这样的因子,选择被转化的宿主细胞,选择目的蛋白的表达水平,以及选择表的的时间和位置,等等。本发明的表达载体可以被引入到宿主细胞,从而产生由本发明所述的核酸编码的蛋白质或多肽,包括融合蛋白或多肽(例如,PK220蛋白,PK220蛋白突变形式,融合蛋白等)。
本发明的重组表达载体可被设计用于在原核或真核细胞中表达PK220基因,PK220蛋白质,或其中的部分。例如,PK220基因或PK220蛋白质可以在细菌细胞中表达,如大肠杆菌,昆虫细胞(用杆状病毒表达载体),酵母细胞,植物细胞或哺乳动物细胞。合适的宿主细胞中在Goeddel(1990)进一步讨论。另外,重组表达载体可在体外转录和翻译,例如,使用T7启动子调控序列和T7聚合酶。
在一个实施例中,使用植物表达载体,本发明的核酸在植物细胞中表达。植物表达载体系统的例子包括肿瘤诱导(Ti)质粒,或部分来自于农杆菌,花椰菜花叶病毒DNA(CaMV),以及如pBll21载体。
对于植物表达,重组表达盒将包含,除PK220核酸外,还有能在植物细胞中发挥功能的启动子区域,转录起始位点(假如缺乏转录编码序列),和可选的转录终止/加尾序列。终止/加尾区域可从与启动子序列相同的基因或不同的基因中获得。在表达盒的5’和3’端引入独特的限制性内切酶位点,为便于允许插入一个预先存在的载体。
合适的启动子的例子包括来自于植物病毒启动子,如来自于从菜花花叶病毒(CaMV)的35S启动子(Odell et al.,1985),来自于基因的启动子,例如水稻肌动蛋白(McElroy et al.,1 990),泛素(Christensen et al.,1992),pEMU(Last et al.,1991),MAS(Velten et al.,1984),玉米H3组蛋白(Lepetit et al.,1992 and Atanassvoa etal.,1992),衍生自农杆菌T-DNA的5′-或3′-启动子,Smas启动子,肉桂醇脱氢酶启动子(U.S.Pat.No.5,683,439),Nos启动子,核酮糖-1,5-二磷酸羧化酶/加氧酶启动子,GRP1-8启动子,ALS启动子(WO 96/30530),合成启动子,例如Rsyn7,SCP和UCP启动子,核酮糖-1,3-二磷酸羧化酶,水果特异性启动子,热休克启动子,种子特异性启动予以及其他来自于各种植物基因的转录起始区域,例如,包括不同的植物碱转录起始区域,例如,章鱼碱,甘露碱和胭脂碱。在某些情况下,与插入基因(如PK220)相关的启动子可能被用来表达插入的结构目的基因,例如野生型AtPK220启动子(PpK)。与PK220编码核酸序列连接的用于在植物细胞中表达的调控元件包括,终止子,加尾序列和核酸序列编码信号肽,使蛋白在植物细胞中定位或从细胞中分泌。这些调控元件的添加以及将这些元件与PK220基因的调控元件进行交换的方法是已知,包括但不限于,3’终止和/或加尾区域,例如,农杆菌胭脂碱合成酶基因(Nos)的3’终止和/或加尾区域(Bevan et al.,1983);马铃薯蛋白酶抑制基因II(PIN II)(Keil et al.,1986),以及此处引用的文献);以及An et al.(1989);以及CaMV19S基因(Mogen et al.,1990)。
植物信号序列,包括但不限于,信号肽编码DNA/RNA序列,引导蛋白至植物细胞外的基质中(Dratewka-Kos et al.,1989)和皱叶烟草的延伸基因(De Loose et al.,1991),或是将蛋白引导至液泡中的信号肽,如甘薯储藏蛋白基因(Matsuoka et al.,1991)和大麦外源凝集素基因(Wilkins et al.,1990),或是造成蛋白质分泌的信号,例如PRIb(Lund etal.,1992),或那些引导蛋白至质体的信号,例如油菜籽enoyl-ACP还原酶(Verwoert etal.,1994)对于本发明都是有用的。
在另一个实施方案中,重组表达载体,能够指导优选核酸序列在特定细胞型中表达(例如,组织特异性调控元件用于表达核酸)。组织特异性调控元件在本领域中众所周知。例如,与TAIR数据库中定义为At2g44790(P4790)的编码序列相关的启动子是一个根特异性启动子。与本发明中的核酸序列尤其有关的是在植物中具有可操作性的表达系统。其中包括,在组织特异性启动子控制下的表达系统,以及那些在各种植物组织中具有可操作性的启动子所涉及的系统。各种发起人于各种植物组织可操作..
器官特异性启动子也是众所周知的。例如,查尔酮合成酶-A基因(van der Meeret al.,1990)或二氢黄酮醇-4-还原酶(dfr)启动子(Elomaa et al.,1998)指导的在特定花卉组织中表达。此外,同样可用的启动子还包括patatin class I启动子,仅在马铃薯块茎转录激活,可用于目的基因在块茎(Bevan,1986)中的表达。另一个马铃薯特异性启动子是颗粒-绑定的淀粉合成酶(GBSS)启动子(Visser et al.,1991)。
适合目的器官的其他器官特异性启动子可以利用已知的程序进行分离。这些控制序列通常在目的器官中伴随着基因独特的表达。在典型的高等植物中,每个器官含有成千上万的mRNA,而这些mRNA在其他器官系统中是没有的(Goldberg综述,1986)。
由此产生的表达系统被连接入或者构建引入德奥重组载体中,该载体适用于植物转化。载体可能还包含一个选择标记基因,通过它可以培养鉴定转化的植物细胞。标记基因可以编码抗生素抗性。这些抗性标记包括G418,潮霉素,博莱霉素,卡那霉素和庆大霉素。或者标记基因可以编码除草剂抗性基因,能够耐受草铵膦或草甘膦类型的除草剂。转化植物细胞后,那些含有载体的细胞可以通过它们在含有特定抗生素或除草剂的培养基中的生长能力来确定。通常,也包括允许载体被克隆至细菌或噬菌体宿主中的细菌或病毒的复制起始序列,优选包括广泛宿主范围的原核起始复制。对于细菌,还应包括合适的选择标记,允许进行含有目标构建体的细菌细胞的筛选。合适的原核筛选标记还包括对于如卡那霉素或四环素等抗生素的抗性。
其他的编码附加功能的DNA序列也可以含在载体中,在本领域中是众所周知的。例如,在农杆菌转化的情况下,也将包括T-DNA的序列,用于随后的植物染色体的转化。
本发明的另一个方面涉及到宿主细胞,本发明的重组表达载体被引入其中。术语“宿主细胞”和“重组宿主细胞”是可以互换使用的。据了解,这些术语不仅指特定的主体细胞,同样也指此细胞的后代或潜在的后代。由于要么突变或环境影响,某些修饰可能存在于随后的子代中,这样的后代事实上可能不会与亲代细胞相同,但仍然包括在此处所用的这个词的范围内。
载体DNA可以被引入到原核或真核细胞中,通过传统的转化或转染技术。如本文所用的,术语“转化”和“转染”的本意指的是各种公认的技术,用于将外来的核酸(如DNA)引入宿主细胞。
本发明的宿主细胞,例如培养中的原核或真核宿主细胞,可用于生产(即表达)本发明所述的多肽,该多肽由本发明所述的多核苷酸的开放阅读框所编码。因此,本发明还提供使用本发明的宿主细胞用于生产多肽的方法。在一项具体实施方案中,该方法包括在合适的培养基中,培养本发明的宿主细胞(其中编码本发明的多肽的重组表达载体已被引入),使细胞产生多肽。在另一项实施方案中,该方法还包括从培养基或宿主细胞中分离多肽的方法。
许多的细胞类型可以作为合适的宿主细胞用于表达本发明中的多肽,多肽由多核苷酸形式的开放阅读框编码。植物宿主细胞包括,例如,能够作为合适的宿主细胞用于表达本发明的多核苷酸的植物细胞,包括,表皮细胞,叶肉和其他地面组织,叶片、茎、花器官中的维管组织,和各种植物的物种的根,如拟南芥、烟草、甘蓝型油菜、玉米、水稻、棉花和大豆。
编码非全功能的PK220蛋白的PK220核酸的表达,在显性/隐性抑制方法中会很有用。PK220突变多肽,或其部分,在植物中表达,使其拥有部分的功能。突变的多肽,例如,可以具有结合到其他分子的能力,但阻止复合体的适当活性,从而造成PK220活性的总体抑制。
转化的植物细胞以及转基因植物
本发明包括原生质体,植物细胞,植物组织和植物(如单子叶和双子叶植物),使用PK220核酸、含有PK220核酸的载体或含有PK220核酸的表达载体进行转化。本文所用的“植物”是指不仅包括完整植物,同样也包括其中的部分(即,细胞和组织,包括例如叶,茎,芽,根,花,果实和种子)。
该植物可以是任何植物类型,包括,例如,来自于以下属类的物种:拟南芥,油菜,水稻,玉米,高粱,短柄,芒草,棉花,小麦,大豆,豌豆,绿豆,番茄,红车轴,大麻,南瓜,罗莎,葡萄,核桃,草莓,莲花,苜蓿,红豆草,葫芦,豇豆,柑橘,亚麻,天竺葵,木薯,胡萝卜,萝卜,芥,颠茄,辣椒,曼陀罗,天仙子,烟草,马铃薯,矮牵牛,洋地黄,马约喇纳,菊苣,向日葵,莴苣,雀麦,芦笋,金鱼草,萱草,Nemesis,天竺葵,稷,狼尾草,毛茛属,千里光,美人襟,黄瓜,Browaalia,黑麦草,燕麦,大麦,黑麦,云杉,可可,胡杨。
本发明还包括细胞,组织,例如包括叶,茎,芽,根,花,果实和种子,以及从转化的植物中衍生的后代。
已知有多种方法用于将外源基因引入植物中,这些方法可用于将基因插入到植物宿主中,包括生物和物理的植物转化标准步骤(见,例如Miki et al.,(1993)“Procedurefor Introducing Foreign DNA into Plants”,In:Methods in Plant MolecularBiology and Biotechnology,Glick and Thompson,eds.,CRC Press,Inc.,Boca Raton,pages 67-88;Andrew Bent in,Clough SJ and Bent AF,(1998)“Floral dipping:asimplified method for Agrobacterium-mediated transformation of Arabidopsisthaliana”)。随宿主植物的不同选择不同的方法,包括化学转染方法,例如钙磷酸,聚乙二醇(PEG)转化,微生物介导的基因转移,如农杆菌(Horsch et al.,1985),电穿孔转化,原生质体转化,微注射,花浸渍和基因枪法。
农杆菌介导的转化
将表达载体引入植物中最广泛使用的方法是建立于根瘤农杆菌和发根农杆菌的天然转化系统上的,农杆菌是植物病原细菌,病原细菌可遗传转化植物细胞。根瘤农杆菌和发根农杆菌的Ti和Ri质粒,分别携带用于植物遗传转化的响应基因(见,例如,Kado,1991)。农杆菌载体系统的详述和农杆菌介导的基因转移的方法请见Gruber et al.(1993)和Moloney et al.,(1989)。
转基因拟南芥植株可容易制备,通过浸泡开花植物到农杆菌培养基中的方法,该方法是建立在Andrew Bent in,Clough SJ and Bent AF,1 998的方法基础上的。《花卉浸渍:一种简化方法用于农杆菌介导转化拟南芥》。野生型植物生长到同时含有未开和已开的花朵。将植物倒置如农杆菌培养溶液中1分钟,该溶液含有合适的基因构建体。然后将植物向左水平放置在托盘中,加盖两天保持湿度,然后向右翻转装到袋子中,继续生长和萌发种子。然后收获成熟的种子。
直接基因转移
一个普遍适用的植物转化方法是基因枪微粒介导的转化,其中DNA置于大小为1至4微米的微粒表面。使用基因枪装置将表达载体引入到植物组织中,基因枪将微粒加速到300-600米/秒,足以穿透植物细胞壁和细胞膜(Sanford et al.,1993;Klein et al.,1992)。
植物转化也可以通过气溶胶束注入器(ABI)的方法来实现,见U.S.Pat.5,240,842和U.S.Pat.6,809,232所述。气溶胶束技术是用来加速湿或干粒子的速度使粒子穿透活细胞。气溶胶束技术利用惰性气体射流扩展,它从一个高气压区域通过一个小孔,进入低气压区。膨胀气体加速气溶胶液滴,其中包含的核酸分子被导入细胞或组织中。加速粒子定位于冲击首选的目标,例如植物细胞。这些粒子被构建成一个个尺寸足够小的液滴,使得细胞能忍受渗透压。使用本应用领域中人员所周知的标准技术,使转化的细胞或组织生长来制备植物。
转化子的再生
从任一单一植物原生质体或不同的外植体开发或再生植株的技术是众所周知的(Weissbach and Weissbach,1988)。这种再生和成长过程通常包括的步骤有,转化细胞的选择,通过植株扎根阶段的胚胎发育,培养这些分化的细胞。转基因胚胎和种子以同样方式再生。由此产生的转基因根苗然后种植于适当的植物生长培养基中,如土壤等。
可以通过本领域熟知的方法,见(Horsch et al,1985),实现含有外源基因的植物的开发和再生,该基因编码的有益多肽是由农杆菌介导从叶片外植体引入的。在此过程中,在含有筛选试剂的培养基中培养转化子,培养基能够诱导被转化的植株的根系的再生,如(Fraley et al.,1983)所述。特别的是,U.S.Pat.No.5,349,124(本文特别纳入参考文献)详细介绍了基因转化的生菜细胞和由此的得到的植株的制备方法,该植物表达了对鳞翅目幼虫具有杀虫活性的杂种晶体蛋白。
此过程通常会在两到四个月内生芽,然后将这些芽转移到适当的根诱导培养基中,培养基含有选择性试剂剂和抗生素,以防止细菌滋生。为了形成植株,然后将在含有选择性试剂下生根的小芽转培至土壤或其他培养基中来促使在根的生产。这些步骤不尽相同,主要依赖于所用的特定植株,这些不同的方法是本领域众所周知的。
优选的是,再生植株是自花授粉,以提供纯合转基因植物,或者由再生植株的获得花粉,与重要农艺性状的种-生植物杂交,优选自交系植物。相反地,来自于重要系品植物的花粉用于给再生植株授粉。本发明中含有目的多肽的转基因植物的种植使用的是本领域技术人员所周知的方法。
优选的转基因植物是一种独立分裂的,能够将PK220基因构建体转移至其后代。更优选的是,转基因植物对于基因构建体是纯合的,能够在性状分配时,将此基因构建体转移至所有的后代。从转基因植物得到的种子可以生长在外地或温室中国,以及由此产生的性成熟的转基因植物是自授粉的从而产生真正的的自交产生真正的育种植物。从这些植物得到的后代变成了真正的育种系,可用于评估PK220基因表达的降低。
制备转基因植物的方法
本发明还包括生产转基因植物的方法,相对于野生型植物,转基因植物具有以下特点:增加的水分利用效率,降低的低温敏感性以及在低氮条件下,幼苗生长抑制减少。该方法包括在一个或多个植物细胞中引入一种化合物,该化合物抑制或降低植物中PK220基因的表达或活性,产生转基因植物细胞,以及从转基因细胞中再生转基因植物。该化合物可以是,例如,(i)PK220多肽;(ii)PK220核酸,类似物,同系物,同源基因,部分基因,变种或其互补序列;(iii)降低PK220核酸表达的核酸。降低PK220核酸表达的核酸可以包括启动子或增强子元件。该PK220核酸可以是内源性的或外源性的,例如,拟南芥的PK220核酸可以导入甘蓝型油菜和玉米种中。优选的是,对于被转化物种,该化合物是PK220内源性核酸序列。另外,对于被转化物种,该化合物可以是PK220外源性核酸序列,并且,相对于内源性靶序列,该化合物具有至少70%,75%,80%,85%,90%或更高的同源性。
与野生型植物(即未转化的)相比,转基因植物在不同的方面的有不同的表型。通过不同的表型,意味着该植物具有一个或多个特点,与野生型植物不同。例如,当转基因植物与一种化合物接触,该化合物降低了PK220核酸的表达或活性,那么该植物相对于野生型植物,具有一种表型,如增加的水分利用效率,降低的低温敏感性以及在低氮条件下,幼苗生长抑制减少。
该植物可以是任何植物类型,包括,例如,来自于以下属类的物种:拟南芥,油菜,水稻,玉米,高粱,短柄,芒草,棉花,小麦,大豆,豌豆,绿豆,番茄,红车轴,大麻,南瓜,罗莎,葡萄,核桃,草莓,莲花,苜蓿,红豆草,葫芦,豇豆,柑橘,亚麻,天竺葵,木薯,胡萝卜,萝卜,芥,颠茄,辣椒,曼陀罗,天仙子,烟草,马铃薯,矮牵牛,洋地黄,马约喇纳,菊苣,向日葵,莴苣,雀麦,芦笋,金鱼草,萱草,Nemesis,天竺葵,稷,狼尾草,毛茛属,千里光,美人襟,黄瓜,Browaalia,黑麦草,燕麦,大麦,黑麦,云杉,可可,胡杨。
实施例
高水分利用效率突变株hwe116的鉴定
一株拟南芥EMS突变体(哥伦比亚背景)最初被确定为具有耐旱属性。该突变体用于测试最佳和干旱条件下的水分利用效率。结果表明,该突变体耐旱的性质是由于其具有较高的水分利用效率,无论在水胁迫或最佳水分条件下。因此,此突变株被命名为hwe116。
基于图谱的hwe116克隆
通过hwe116突变株与拟南芥的兰茨贝格生态型(Ler)交叉,产生F2种群,用于基于图谱的克隆,通过测定突变株的耐旱性,以及因此确认突变株具有高水分利用效率特点。经5天干旱处理,测定F2种群的单位干重失水率水,得到的数据进行常规化,用于QTL分析,与hwe116突变株和两种野生型生态型对比,每单位F2植株干燥失重是衡量一在5天的干旱处理和数据分析的QTL是相对于hwe116突变体和野生型的两个生态型,兰茨贝格株和哥伦比亚株。收集表型实验中来自于所有的F2和对照植物的叶片组织,用于基因型分析。用Mapmaker3.0和WinQTLCart2进行QTL分析。为了进一步确定QTL峰内的突变,使用了芹菜内切酶I(CEL I)。
使用CEL I核酸酶的突变检测
芹菜内切酶I(CEL I),能够在碱基对替换的位点高度的异性的切割DNA,而碱基对替换造成了野生型和突变体的等位基因之间的错配,因此芹菜内切酶I被报道用于检测EMS突变株中的突变位点(Yang et al.,2000;Oleykowski et al.,1998)。
使用hwe116或亲代哥伦比亚株基因组DNA为模板,通过优化的PCR扩增得到约5kb的DNA片段。扩增产物等量混合在一起,然后进行一个变性和退火循环形成异源双链DNA。42℃下使用CEL I温浴20分钟,在异源双链DNA的突变点处切割。使用1%琼脂糖凝胶电泳和EB染色观察DNA片段。
使用此方法扩增5kb的PCR产物,引物为:SEQ ID NO:102和SEQ ID NO:104,模板为:hwe116,和哥伦比亚型对照。形成的异源双链PCR产物经CEL I酶切后产生了小片段(1.4和3.6kb)。使用引物SEQ ID NO:104和SEQ ID NO:105扩增重叠的亚片段(约3kb),进一步确定突变位点。亚片段经测序后,发现hwe116中的C核苷酸突变为T核苷酸。
由于核酸序列SEQ ID NO:1和3中的874位核苷酸的C到T的转变,产生了氨基酸的改变,292位的氨基酸由亮氨酸(L)的密码子(CTT)改变为苯丙氨酸(F)的密码子(TTT),因此有益突变被鉴定。含有突变的基因被确定是一种丝氨酸/苏氨酸蛋白激酶(Ser/Thr PK)。野生型基因被确定为与GenBank登录号At2g25220相同。该丝氨酸/苏氨酸蛋白激酶在本文中被称为AtPK220,hwe116的确定突变形式被称为AtPK22oL292F。
转录评估
Northern分析和RT-PCR检测表明,相对于野生型对照,hwe116中的AtPK220基因的表达水平和转录尺度未发生改变。
部分AtPK220L292F和AtPK220序列的初始克隆
基于TAIR的注释,AtPK220L292F(AtPK220L292F(p))的部分序列和AtPK220AtPK220(P))的部分序列采用RT-PCR反应进行扩增,使用如下引物:SEQ ID NO:106和SEQ ID NO:107,分别含有BamH I和Pst I酶切位点用于克隆,模板的RNA分别分离自hwe116和对照植物(哥伦比亚型)。产生的部分AtPK220L292F核苷酸序列见SEQ ID NO:5,对应的氨基酸序列见SEQ ID NO:6。产生的部分AtPK220核苷酸序列见SEQ ID NO:7,对应的氨基酸序列见SEQ ID NO:8。
大肠杆菌表达的部分AtPK220L292F蛋白的激酶活性分析
PCR产物用BamH I和Pst I消化,并插入到表达载体pMAL-c2(New EnglandBiolabs,Beverly,MA)中与malE基因形成一种符合读码框的融合蛋白,用于表达麦芽糖结合蛋白:MBP-AtPK220L292F(p)和MBP-AtPK220(P)。融合蛋白在大肠杆菌中表达,采用淀粉亲和层析法进行纯化,如制造商(New England Biolabs)所述。含有融合蛋白的组分经汇集和浓缩(Centriprep-30浓缩器,Amicon)。采用SDS-PAGE电泳方法分析其表达水平,融合蛋白的大小和纯度。
活性分析参照(Huang et al.,2000)的方法进行。激酶自动磷酸化分析混合物(30μl)包含:激酶反应缓冲液中蛋白激酶(50mM Tris,pH 7.5,10mM MgCl2,10mM MnCl2),1μCi[γ-32p]ATP以及10ng纯化的AtPK220L292F(P)或MBP-AtPK220(P)。对于反磷酸化分析,每个检测反应中添加髓鞘碱性蛋白(3μg)。通过添加酶起始反应。室温下孵育30分钟后,加入30μl Laemmli样品缓冲液终止反应(Laemmli,1970)。样品在95℃反应5分钟,然后上样于15%的SDS-聚丙烯酰胺凝胶。使用考马斯亮蓝R-250进行凝胶染色,然后脱色,烘干。采用KodakX-Omat AR膜检测32P标记的条带。
野生型的MBP-AtPK220(p)融合蛋白能够在体外活性检测中磷酸化人工底物,表明检测系统是有效的,MBP-AtPK220(p)融合蛋白具有活性能力。与此相反,hwe116的突变形式,MBP-AtPK220L292F(p),不能催化模式底物的磷酸化反应。单点突变足以消除hwe116的AtPK220(p)基因的活性。
AtPK220全长cDNA序列的分离
TAIR数据库中AtPK220(At2g25220)的注释确定了5′起始密码子,终止信号和3′UTR序列。注释序列的5′部分分析表明了可选的5′序列和启动子的位置。为了确定AtPK220基因的5′区域以及类似的起始密码子,使用了SMART RACE方法(快速cDNA末端扩增,CloneTech)。
设计特异性的引物SEQ ID NO:108,用于5’RACE,得到了450bp的PCR产物。由450bp的PCR产物测序得到的数据表明,TAIR中注释的AtPK220缺失了5’端的186bp,其中包括39bp的5′UTR区序列和147bp的编码序列。在TAIR的基因组注释中,还缺失了一个位于AtPK220起始密码ATG的上游324bp的内含子。
将5′RACE结果和TAIR数据库注释相组合,得到全长的AtPK220的cDNA序列(SEQ IDNO:9)。该序列被确定长度为1542bp,其中包括39bp的5′UTR,204bp的3′UTR和1299bp的编码区。该AtPK220编码区被确定为序列SEQ ID NO:1,编码432个氨基酸的蛋白质,如序列SEQID NO:2所示。比较AtPK220和其最接近的同源基因,At4g32000,结果显示在AtPK220中存在51bp的额外序列,包括序列SEQ ID NO:9的368-418核苷酸序列。这个序列提供了一个用于下调构建体的靶序列,该构建体被设计用来专门下调AtPK220基因,而不是非-靶基因,如At4g32000。
AtPK220的序列分析表明,该丝氨酸/苏氨酸激酶属于类受体蛋白激酶家族,具有信号肽(1-29),胞外域(30-67),单跨膜域(68-88),ATP结合域(152-175,由Prosite测定),丝氨酸/苏氨酸蛋白激酶活性域(267-279,由InterPro法测定)以及一个激活环(289-298,303-316)。
AtPK220恢复hwe116突变株
构建野生型AtPK220表达的构建体,并将之转化至hwe116突变株。构建体在CaMV35S启动子作用下进行组成型表达,并称构建体为35S-AtPK220。
35S-AtPK220
使用引物对SEQ ID NO:109和SEQ ID NO:110,扩增的片段包含全长的AtPK220开放阅读框(ORF)。使用引物对SEQ ID NO:111和SEQ ID NO:110,扩增的片段包含AtPK220的一部分ORF。扩增的片段用限制性内切酶Sma I和BamH I消化,并克隆至经相同的限制性内切酶消化的pEGAD载体。经PCR及随后的限制性酶切产生的包含AtPK220全长开放阅读框的片段如序列SEQ ID NO:10所示。经PCR及随后的限制性酶切产生的包含部分AtPK220的ORF的片段如序列SEQ ID NO:11所示。
35S-AtPK220构建体转化至拟南芥hwe116中。转基因株被恢复并推进到T3纯合品系。测试这些品系的抗旱性和水分利用效率特征。35S-AtPK220构建体恢复了野生型的表型。
T-DNA敲除品系及生理评估
AtPK220及两个相近的的同源基因的SALK T-DNA敲除品系,通过ABRC获得并推进纯合性。两个基因的TAIR登录号为AT4G32000(SEQ ID NO:16)和AT5G11020(SEQ ID NO:18)。它们如下所列;
AtPK220:SALK147838;
AtPK32000(AT4G32000):SALK_060167,SALK_029937 and SALK_121979;
AtPK1 1020(AT5G1 1020):SAIL_1260_H05
经RT-PCR或Northern检测分析基因的表达水平,结果表明,敲除株的目的基因显着减少或者完全消失。这些基因敲除品系用于生理评估。只有AtPK220(SAL_147838)的基因敲除品系具有有显着的抗旱性和较高的水分利用效率,表明AtPK220是目的基因并负责hwe116的水分利用效率表型。密切相关的基因AT4G32000和AT5G11020是非功能性冗余的,这些基因的抑制不足以产生hwe116表型型。
拟南芥中PK220蛋白活性的抑制
基因活性的抑制可以通过多种方式的技术方法获得,例如,反义表达,RNAi或发夹结构,体内突变,显性负向途径或者制备突变种群,通过筛选方法选择适当的品系等。所提供的例子说手段,这里提供的所述方法的离子用于制备具有抑制PK220基因的表达或活性的植物。
通过RNAi下调PK220
使用发夹(HP)构建体设计用于PK220的RNAi抑制。构建体由AtPK220 cDNA序列的288bp或154bp组成,分别称之为(270)PK220和(150)PK220。288bp的(270)PK220片段含有10bp的内含子序列,在构建这些PCR产物的过程中包含在PCR引物中。可以使用这些片段构建载体,在所选的启动子的控制下来驱动表达,此过程对于本领域的技术人员是显而易见。在这些实施例中,组成型启动子(35S CaMV),或天然AtPK220启动子(PPK)被使用。AtPK220基因的两个片段,或部分被选择,以最接近的同源At4g32000为对照,AtPK220的不同区域被选定,首先是288bp的(270)PK220片段(SEQ ID NO:13),第二是154bp的(150)PK220片段(SEQ ID NO:12)。
35S-HP-At(270)PK220及35S-HP-At(150)PK220
发夹结构(HP)35S-HP-At(270)PK220和35S-HP-At(150)PK220构建体的生成如下。分别采用引物对SEQ ID NO:134/SEQ ID NO:115和SEQ ID NO:114/SEQ ID NO:115进行RT-PCR扩增,得到(270)PK220和(150)PK220的正义片段。PCR产物经Sac I酶切,并分别插入到二元载体pBI 121tGUS的Sac I位点。由此产生的载体随后用于亚克隆(270)PK220和(150)PK220的反义片段,反义片段分别采用引物对SEQ ID NO:112/SEQ ID NO:117和SEQ ID NO:116/SEQ ID NO:117进行RT-PCR扩增得到。载体和PCR产物都用BamH I和Xba I消化用于亚克隆。
PPK-HP-At(270)PK220及PPK-HP-At(150)PK220
PPK-HP--At(270)PK220和PPK-HP-At(150)PK220构建体分别由35S-HP-At(270)PK220或35S-HP-At(150)PK220制备得到,通过使用AtPK220启动子序列(SEQ ID NO:14)替换35S启动子序列。通过Hind III和Xba I双酶切将35S启动子序列从35S-HP-At(270)PK220和35S-HP-At(150)PK220除去。线性化的质粒然后用DNA聚合酶I的Klenow片段产生平末端并自我连接,形成一个新的质粒,其中的Xba I位点恢复,而Hind III位点消失。使用该恢复的Xba I位点,一个AtPK220启动子的Nhe I DNA片段被克隆至HP-At(270)和HP-At(150)序列的上游,产生最终的质粒PPK-HP--At(270)PK220和PPK-HP-At(150)PK220。AtPK220启动子序列(SEQ ID NO:14))从拟南芥(哥伦比亚型)的基因组中进行PCR扩增,使用引物对SEQ IDNO:135/SEQ ID NO:136。
P4790-HP-At(270)PK220
为了特异性下调内源性AtPK220,强力的根系启动子P4790被鉴定发现在拟南芥的根中能高表达,特别是在内皮层,周皮层和轴管中。P4790启动子与At2g44790编码序列相关,P4790的表达特征与野生型AtPK220的表达是相似的。该P4790用于替换35S-HP-At(270)PK220中的35S启动子。以拟南芥(Col)为模板,使用引物SEQ ID NO:151和SEQ ID NO:152扩增At2g44790。扩增的启动子片段为1475bp长,正好位于TAIR注释中At2g44790的起始密码子ATG的上游。1475bp的P4790片段被确定为SEQ ID NO:150。通过引物设计在启动子的5’和3’端引入Hind III和Xba I酶切位点。通过HindIII/XbaI双酶切,将启动子序列替换35S-HP-At(270)PK质粒中的35S启动子,得到最终的构建体pBI-P4790-HP-At(270)PK。
使用RNAi下调油菜中的BnPK220
35S-HP-Bn(340)PK
为了下调油菜种属中的AtPK220同源基因,制备了一个发夹结构,采用BnPK220的338bp的片段(SEQ ID NO;153)作为正义和反义部分,pBI300tGUS作为载体。根据BnPK220序列设计两对具有独特酶切位点的引物SEQ ID NO:154/SEQ ID NO:155;以及SEQ ID NO:156/SEQ ID NO:157。以甘蓝型油菜的cDNA为模板分别用两对引物扩增338bp长的PCR片段。SacI片段插入到pBI300tGUS载体的SacI位点,以反义方向位于tGUS间隔区的下游。产生的质粒,随后在XbaI和BamHI位点用于以正义的方向克隆XbaI-BamI片段。载体pBIl21tGUS经内部的NPT II筛选标记基因修饰,命名为pBI300。pBIl21载体内的NPT II基因含有一个点突变(3383位置的G到T,氨基酸改变E182D)。为了将基因恢复到野生型版本,该载体的NheI-BstBI片段(2715-3648位置)被来自于质粒pRD400的相应的NheI-BstBI片段所替换(PNAS,87:3435-3439,1990;Gene,122:383-384,1992)。
P4790-HP-Bn(340)PK
At2g44790的P4790启动子用于控制发夹结构的表达来下调油菜种属的内源性BnPK220。质粒35S-HP-Bn(340)PK经Hind III和Xba I酶切后,用P4790启动子替换35S启动子。
通过反义下调PK220
制备构建体35S--antisenseAtPK220用来通过反义下调AtPK220的表达。使用引物对SEQ ID NO:106/SEQ ID NO:113进行PCR产生反义片段。合成的产物用BamHI和XbaI消化产生一个1177bp的序列,含有1160bp的AtPK220基因(SEQ ID NO:11)。包括有,5′端10bp的内含子序列,以及从PCR引物中保留的3′端7bp的3′UTR序列。以与35S启动子反义的方向,将1177bp的片段克隆到pBI121 w/oGUS载体上的BamHI和XbaI位点。
通过AmiRNA下调PK220
构建一个人造小RNA(amiRNA)用于在拟南芥中下调AtPK220的表达。以拟南芥(Col)基因组为模板,利用PCR扩增拟南芥中包含microRNA319a基因的DNA片段(SEQ ID NO:148),引物为SEQ ID NO:141和SEQ ID NO:142。miR319a的骨架然后用于构建amiRPK220(SEQ ID NO:149),其中,利用重组PCR方法将miRNA319a中正义及反义方向的21bp的片段用AtPK220中的21bp的DNA片段替换。设计三对引物用于构建过程:SEQ ID NO:141/SEQ IDNO:144;SEQ ID NO:143/SEQ ID NO:146以及SEQ ID NO:145/SEQ ID NO:142。最后的PCR产物用BamHI和XbaI酶切,然后克隆到载体pBI121w/oGUS中,用于转化拟南芥或选择的其他植物物种。
通过显性-隐性策略抑制PK220
35S-AtPK220L292F
为了非功能AtPK220序列的表达,用RT-PCR扩增来自hwe116的AtPK220L292F,采用正向和反向引物:SEQ ID NO:118和SEQ ID NO:110。PCR产物用限制性内切酶BamHI和XbaI消化(SEQ ID NO:121),连入双元载体pBl121w/oGUS。SEQ ID NO:121的序列包含AtPK220L292F开放阅读框(SEQ ID NO:3),在5′端多了3bp,以及3′端多了7bp,这是从UTR序列(SEQ ID NO:121)中衍生出来的。最终的构建体,35S-AtPK220L292F,用于产生拟南芥和油菜转基因植株,进一步得到纯合体用于生理评估。此外,载体用来转化所选的植物品种,可以是双子叶植物或单子叶植物。
P4790-AtPK220L292F
根启动子P4790的HindlII-XbaI酶切片段,用于替换pBI300中的35S启动子,然后AtPK220L292F序列通过XbaI和BamHI消化置于P4790的下游,来产生P4790-驱动的显性-隐形构建体。所得的质粒,然后用于油菜的转化。此外,载体用来转化所选的植物品种,可以是双子叶植物或单子叶植物。
利用RNAi下调单子叶植物的AtPK220同源基因
PBdUBQ--HP--Bd(272)PK
构建一个表达盒,插入到连个不用的载体骨架中,第一个是插入到pUCAP载体的PacI-AscI位点,第二个是插入到pBF012载体的PacI-AscI位点。pBF012与pBINPLUS/ARS是基本相同的,除了通过FseI消化及自我连接,切除了马铃薯-Ubi3驱动的NPTII表达盒。
二穗短柄草的PK220(BdPK220)被扩增,使用不同的引物组合SEQ ID NO:158(bWETXbaI F)加SEQ ID NO:159(bWET BamHI R),引物中分别含有XbaI位或BamHI位点,以及SEQID NO:158(bWET XbaI F)加SEQ ID NO:160(bWET ClaI R),引物中分别含有XbaI位或ClaI位点。PCR产物经相应的限制性内切酶消化后,得到272bp的片段(SEQ ID NO:161)。
发夹间隔序列,BdWx内含子1(SEQ ID NO:164),被扩增,使用引物SEQ ID NO:162(bWx BamHI F)加SEQ ID NO:163(bWx ClaI R),引物中分别含有BamHI位点或ClaI位点,然后用相应的限制性内切酶消化。二穗短柄草的Wx基因是水稻蜡质基因GBSS的同源基因,尽管内含子的保守性较小。
三个片段连接到一起,插入到pUCAP载体的多克隆位点,产生了两侧分别为方向相反的Bd(272)PK220靶序列包围的BdWx内含子1序列。二穗短柄草泛素(BdUBQ)启动子包含一个内部的BamH I位点,因此,使用引物SEQ ID NO:200(bWET BamH I end1)和SEQ ID NO:165(bWET BamH I end2)扩增RNAi结构盒,这会产生BamH I粘性末端而不需要消化。RNAi的BamH I片段,然后连接至pUCAP的BamH I位点,载体中已经包含BdUBQ启动子和BdUBQT终止子,产生中间克隆pBF067。使用引物SEQ ID NO:166(BdUBQ PvuI F)和SEQ ID NO:167(BdUBQT PacI R)扩增pBF067中完整的插入片段,经PVuI和PacI消化,随后连接至pUCAP或pBF012载体的PacI位点,载体中在AscI-PacI位点处已经包含一个BdGOS2驱动的突变NPTII筛选标签,分别得到质粒pBF108和pBF109。该NPTII突变基因常见于克隆载体。只有一个碱基对与野生型不同。
此表达盒位于pUCAP的PacI-AscI位点,用于构建穿梭/轰炸载体PBF108,以及位于pBF012的PacI-AscI位点用于构建双元载体PBF109。
PBdUBQ--HP--Pv(251)PK
构建了一个表达盒插入到两个不同的载体骨架中,第一个是插入到pUCAP载体的PacI-AscI位点,第二个是插入到pBF012载体的PacI-AscI位点。柳枝稷的PK220基因中长251bp的片段(Pv(251)PK220)被定义为SEQ ID NO:168,用不同的引物组合进行扩增:SEQID NO:169(PvWET XbaI F)加SEQ ID NO:170(PvWET BamHI R)以及SEQ ID NO:169(PvWETXbaI F)加SEQ ID NO:171(PvWET ClaI R)。PCR产物经相应的限制性内切酶消化。因为关于PVWx内含子1序列的信息不存在,所以在本构建物中BdWx内含子1被用来作为间隔序列。该序列使用引物SEQ ID NO:162(bWx BamHI F)加SEQ ID NO:163(bWx ClaI R)进行扩增并用相应的限制性内切酶消化。
三个片段连接到一起,插入到pUCAP载体的多克隆位点的XbaI处,产生了两侧分别为方向相反的Pv(251)PK220靶序列包围的BdWx内含子1序列。因为没有可用的PvUBQ启动子序列,因此在本构建体中使用了BdUBQ的启动子和终止子。该BdUBQ子含有一个内部的BamHI位点,因此,使用引物SEQ ID NO:172(PVWET BamHI end1)和SEQ ID NO:173(PVWET BamHIend2)扩增RNAi结构盒,这会产生BamH I粘性末端而不需要消化。RNAi的BamH I片段,然后连接至pUCAP的BamH I位点,载体中已经包含BdUBQ启动子和BdUBQT终止子,产生中间克隆pBF152。使用引物SEQ ID NO:166(BdUBQ PvuI F)和SEQ ID NO:167(BdUBQT PacI R)扩增pBF152中完整的插入片段,经PVuI和PacI消化,随后连接至pUCAP或pBF012载体的PacI位点,载体中在AscI-PacI位点处已经包含一个BdGOS2驱动的野生型NPTI,分别得到质粒pBF169和pBF170。
PSbUBQ--HP--Sb(261)PK
构建了一个表达盒插入到两个不同的载体骨架中,第一个是插入到pUCAP载体的PacI-AscI位点,第二个是插入到pBF012载体的PacI-AscI位点。双色高粱PK220基因(SbPK220)中长261bp的片段(Sb(261)PK220)被定义为SEQ ID NO:174,用不同的引物组合进行扩增:SEQ ID NO:175(SbWET XbaI F)加SEQ ID NO:176(SbWET BamHI R)以及SEQ IDNO:175(SbWET XbaI F)加SEQ ID NO:177(SbWET ClaI R)。PCR产物经相应的限制性内切酶消化得到Sb(261)PK220片段。发夹间隔序列,SbWx内含子1(SEQ ID NO:178),被扩增,使用引物SEQ ID NO:179(SbWx BamHI)加SEQ ID NO:180(SbWx ClaI R),然后用相应的限制性内切酶消化。三个片段连接到一起,插入到pUCAP载体的多克隆位点的XbaI处,产生了两侧分别为方向相反的SbWET靶序列包围的SbWx内含子1序列。使用引物SEQ ID NO:181(SbWETBamHI end 1)和SEQ ID NO:182(SbWET BamHI end2),通过PCR扩增在RNAi表达盒上加上BamH I粘性末端。RNAi的BamH I片段,然后连接至pUCAP的BamH I位点,载体中已经包含BdUBQ启动子和BdUBQT终止子,产生中间克隆pBF151。使用引物SEQ ID NO:192(SbUBQ PvuIF)和SEQ ID NO:167(BdUBQT PacI R)扩增pBF151中完整的插入片段,经PVuI和PacI消化,随后连接至pUCAP或pBF012载体的PacI位点,载体中在AscI-PacI位点处已经包含一个BdGOS2驱动的野生型NPTII,分别得到质粒pBF158和pBF171。
使用引物SEQ ID NO:184(SbGOS2 HindlII F)和SEQ ID NO:185(SbGOS2 HindlIIR),利用PCR扩增来自于高粱基因组序列中被鉴定为SbGOS2启动子的序列,GOS2启动子的一个1000bp的片段,被确定SEQ ID NO:183,用PCR扩增并使用HindlII酶切位点克隆。
使用引物SEQ ID NO:187(SbUBQ PstI F)和SEQ ID NO:188(SbUBQ PstI R),利用PCR扩增来自于高粱基因组序列中被鉴定为SbUBQ启动子的序列,UBQ启动子的一个1000bp的片段,被确定SEQ ID NO:186,用PCR扩增并使用Pst I酶切位点克隆。
使用引物SEQ ID NO:190(SbUBQT KpnI F)和SEQ ID NO:191(SbUBQT KpnI R),利用PCR扩增来自于高粱基因组序列中被鉴定为SbUBQ终止子的序列,UBQ终止子的一个239bp的片段,被确定SEQ ID NO:189,用PCR扩增并使用Kpn I酶切位点克隆。
巨芒草(MgPK220)RNA干扰
通过发夹策略设计用于下调的表达载体的构建可遵循同样的策略制定,如上所述。得到的构建体可能包含以下元件,一个BdGOS2-wtNPTII-BdUBQT筛选标签表达盒以及一个BdUBQ-(MgPK220发夹-RNAi表达盒)-BdUBQT,位于所选的载体中,例如pUCAP和pBF012。
AtPK220启动子的分离和克隆
使用拟南芥(哥伦比亚生态型)基因组DNA为模板,用PCR的方法分离AtPK220启动子。5′端引物,SEQ ID NO:119,依据相邻基因设计,3′端引物,SEQ ID NO:120,位于AtPK220基因起始密码子ATG上游25bp处。将扩增产物用BamH I和Sma I消化,克隆至pB1101中。酶切消化片段,SEQ ID NO:14,长度为1510bp。得到的构建体命名为PAtPK220-GUS。
使用GUS分析检测AtPK220启动子的活性
利用花朵浸渍法将PAtPK220-GUS转化至拟南芥植物中,转基因植株进步至T3纯合性。收集T3开花植物的各种组织,包括幼苗,叶,茎,花,角果和根,在X-Gluc溶液中37℃过夜染色,用乙醇溶液脱色,在显微镜下检查。结果表明,AtPK220启动子主要在根组织的内皮层和周皮层细胞中表达,也在叶毛和萌发种子的种皮中有所发现。观察结果的重要意义在于,PAtPK220-GUS基因的表达是受到水分胁迫抑制的。
拟南芥AtPK220蛋白的亚细胞定位
在转基因拟南芥中表达一个全长野生型AtPK220-GFP用于测定天然蛋白的亚细胞定位。由引物对SEQ ID NO:109和SEQ ID NO:110扩增产生的片段用Sma I和BamHI消化,得到一段含有AtPK220全长开放阅读框的片段,如SEQ ID NO:10所示,克隆至pEGAD质粒的SmaI和BamHI位点,位于绿色荧光蛋白(GFP)下游,编码框相对应。此外,使用引物对SEQ IDNO:198和SEQ ID NO:199,扩增AtPK220编码序列,通过Age I酶切pEGAD质粒及扩增的AtPK220片段,将AtPK220插入GFP的上游,并与GFP编码框相对应。
将35S-GFP-AtPK220和35S-AtPK220-GFP构建体,转化至拟南芥植株中,纯合的转基因植株(根组织)被用于在荧光共焦显微镜下进行GFP信号的筛查。结果发现,沿细胞质膜检测到绿色荧光,这表明AtPK220蛋白是与根的细胞膜有关,并且AtPK220的功能可能是,作为对感知的受体激酶或环境信号传感器。
通过5′和3′RACE分离甘蓝型油菜的BnPK220
为了从油菜中分离AtPK220的同源基因,利用AtPK220序列在NCBI核苷酸数据库(nr/nt,est)以及TIGR(DFCI)甘蓝型油菜EST数据库中进行BLAST搜索(BlastN)。基于最高相似度的序列,设计一对引物,SEQ ID NO:122和SEQ ID NO:123,用来PCR扩增BnPK220的一部分片段。使用甘蓝油菜叶片中分离的mRNA和基因组DNA作为这些扩增反应的模板。通过PCR,以油菜基因组DNA为模板,得到一个约500bp的DNA片段。该PCR产物序列分析表明,它与AtPK220的核苷酸序列以及内含子组成方面具有高度同源性。
基于BnPK220的部分序列,进行了5′和3′RACE用来分离BnPK220的全长cDNA。对于3′RACE,使用正向引物SEQ ID NO:124,以及嵌套引物SEQ ID NO:125。对于5′RACE,设计了向引物SEQ ID NO:126,以及嵌套引物SEQ ID NO:127。用于3′RACE或5′RACE的RACE-readycDNA是由甘蓝型油菜嫩叶片中分离的RNA制备的。
5′RACE产生的扩增DNA片段长度约为650bp;3′RACE产生的约为1kb大小。这两种RACE片段额序列分析表明,其与AtPK220具有高度的序列相似性。通过组合5′RACE、部分BnPK220片段以及3′RACE产物,得到BnPK220序列的全长mRNA。
使用PCR引物SEQ ID NO:128和SEQ ID NO:129,通过RT-PCR方法扩增BnPK220的全长cDNA。该cDNA含有1302个核苷酸组成的开放阅读框(SEQ ID NO:25),编码433个氨基酸的蛋白质(SEQ ID NO:26)。使用来自甘蓝型油菜的cDNA,进行RT-PCR扩增,得到另一个BnPK220的全长cDNA。该cDNA(SEQ ID NO:193)与SEQ ID NO:25的同源性为98.6%,编码的蛋白质(SEQ ID NO:194)与SEQ ID NO:26的同源性为99.3%。
利用5′RACE分离大豆的全长GmPK220
通过NCBI的EST数据库的BlastN分析检索,发现一个AtPK220的同源物,是大豆(橹豆)的EST基因,登录号为CX709060.1。根据这个同源物,从大豆EST数据库中检索到含有13个EST的单一基因簇。由这13个EST组成的一个重叠群,涵盖了大多数的基因序列。
通过该重叠群以及5′RACE和3′RACE结果的组合,确定了GmPK220的全长序列(SEQID NO:41)。进行5′RACE,引物SEQ ID NO:130用于首次RACE PCR,引物SEQ ID NO:131用于嵌套RACE PCR。进行3′RACE,引物SEQ ID NO:137用于首次RACE PCR,引物SEQ ID NO:138用于嵌套RACE PCR。GmPK220编码的蛋白质如SEQ ID NO:42所示。
通过数据库检索分离OsPK220(大米)序列
水稻基因组(Oryza sativa,粳稻品种)已经完全测序并公开提供。通过水稻EST数据库的BLAST搜索以及基因组序列数据库的BLASTp搜索,确定了AtPK220在水稻中的同源基因。具有最高得分的目的序列被确定为登录号Os05g0319700。
Os05g0319700简称为OsPK220,如SEQ ID NO:59所示,编码的蛋白质如SEQ ID NO:60所示。
ZmPK220(玉米)序列的分离
通过TIGR的EST数据库的BLAST搜索,发现了两个候选同源基因,一个是单一基因登录号TC333547,第二个登录号是C0439063。
登录号TC333547的长度为2125个核苷酸,包含一个1377个核苷酸的开放阅读框(SEQ ID NO:77),编码458个氨基酸的蛋白质(SEQ ID NO:78)。翻译的蛋白是全长的,比AtPK220稍大。C-端激酶结构域与拟南芥和玉米的蛋白序列是高度保守的,然而,N-端序列的变数较多。
C0439063是一个简短的EST序列,缺少了5′端的序列。通过RACE方法获得缺失的序列。依据C0439063和AtPK220之间的对比校准,设计两个5′RACE引物。首次5′RACE引物为SEQID NO:132和嵌套5′RACE引物为SEQ ID NO:133。同样进行3′RACE,引物SEQ ID NO:139用于首次RACE PCR,引物SEQ ID NO:140用于嵌套RACE PCR。基于5’RACE和3’RACE结果以及C0439063EST序列,组合得到ZmPK220(SEQ ID NO:79)序列。相应的蛋白质序列如SEQ IDNO:80所示。
序列分析表明,与TC333547相比,C0439063与水稻OsPK220有较高的序列相似性。
二穗短柄草(Bd)BdPK220序列的分离
短柄草是模式单子叶植物之一,主要用于功能基因组研究。从公共ESTs或GSSs组合得到重叠群,根据同源比对,它涵盖了BdPK220的3′部分。根据重叠群设计引物Bd81RARl(SEQ ID NO:195)和Bd81RAR2(SEQ ID NO:196),使用短柄草叶片的cDNA进行RACE反应,得到了约650bp的单一片段。将RACE序列和重叠群进行组合,得到了全长BdPK220序列(SEQ IDNO:24),它编码一个461个氨基酸的蛋白质(SEQ ID NO:197)。
通过数据库检索确定GsPK220(棉花)序列
通过棉花(Gossypium)TIGR-EST数据库的BLAST搜索,确定了一个序列簇,定义登录号TC79117,其与AtPK220具有很高的相似性。这个序列簇具有有两个重叠的EST序列,TC79117在这里被称为GsPK220,由1086个核苷酸的开放阅读框组成(SEQ ID NO:81)。最大的开放阅读框编码361个氨基酸的蛋白质(SEQ ID NO:82)。
在限水条件下,hwe116突变体耐旱表型的发现,以及在干旱和最适条件下具有高水分利用效率
两组植物生长(每个3英寸的盆5株,装有等量的无土栽培混合液)在最适条件的生长箱中(22℃,18hr光照,150uE,相对湿度70%),直到开花的第一天(n=6/项目/处理)。从第一朵花开,所有的植物提供相同数量的水(最优级),但一组植物用于最适处理,另一组用于干旱处理。在最适处理中,每天称量盆重,测定每日的水分损失,然后浇水回升到最适水平。在干旱处理中,每天称量盆重,测定水分损失,并允许干旱。在第0,2和4天收获干旱和最适处理条件下的植物,来进行芽苗生物量测定。与对照相比,在干旱条件下,相对于芽苗干重,较低的水分损失表示耐旱的表型。在处理期间,累积的芽苗干重与水分损失的比率,提供了水分利用效率(WUE)的测定方法。植物hwe116推迟了1至2天开花。在干旱条件下,hwe116的相对芽苗生物量的水损失值,明显比亲本对照低(22%)。这一结果表明,该突变体是耐旱的。另外还发现,在最适条件下,hwe116突变株的相对芽苗生物量的水损失值,同样明显比亲本对照低(41%)。这一结果与较高的水分利用效率的表型是一致的。效率的计算表明,在干旱(表1)和最适(表2)两种条件下,突变体hwe116水分利用更有效,因为它用较少的水积累了更多的芽苗生物量(干旱),或同样的生物量而使用较少的水(最适)。
表1 干旱条件下的水分利用效率(WUE)
表2 最适条件下的水分利用效率(WUE)
突变株水分利用效率提高的最终结果是,更高的芽苗干重生物量,如表3所示(从第一朵花后四天收获)。
表3 最终芽苗干重生物量
hwe116突变株在干旱处理过程中保持较高的土壤水含量,达到水分胁迫条件更晚,以及在开花期中,相对于对照植物,在干旱压力条件下,显示出产量保护能力。
在装有等量的无土栽培混合液的4英寸的盆中种植5株植物,进行了一项实验。两组植物生长(最适和干旱)生长在最适条件的生长箱中(22℃,18hr光照,150uE,相对湿度70%),直到开花的第一天(n=9/项目/处理)。从第一朵花开,所有的植物提供相同数量的水,随后,对于干旱处理组进行停水。最适条件组还像之前一样每天浇水。在干旱处理组中,每天称量盆重,共处理6天,来测定土壤水含量。6天干旱处理后,重新给植物浇水,允许它们完成生命周期,与最适条件下的最适组一样。在成熟期,收获每盆中的种子,测定最适条件和干旱处理条件下的植物的种子产量。测定干旱处理过程中土壤水份含量变化的结果。土壤水含量以占盆中初始水量的百分比来表示。结果表明,该突变株能够保持盆中的水更长的时间,因此它达到了胁迫水平(约25%的土壤水含量)的时间比对照晚一天,而且比对照晚一天枯萎。这种处理造成突变株比最适水平减产了17%,而对照减产了1%。因此,突变株显示出24%的产量保护,相对于对照在干旱处理条件时。
hwe116突变株的幼苗表显示出较少的冷应激敏感性。
两组植物,每项8个重复实验,每盆3株,在3寸的盆中生长在最适条件下的生长箱中,22℃,减少白天时间来延长营养生长和延迟开花(10hr光照,150uE,14hr黑暗),70%的相对湿度。在生长的第10天(幼苗从琼脂板移植到土壤后的3天),将冷处理组置于8℃的生长箱,继续生长11天,而最适条件组保持在22℃。在生长的第21天收获植物用于测定芽苗干重(DW)。结果见表4。在最适条件下,hwe116突变株比对照组的幼苗要小,但冷处理后,芽苗干重与亲代的干重相等,当以最适干重的百分比评价时,它比两个对照组分别高9%和15%,这表明突变株的生长没有像对照组那样受到寒冷的抑制。
表4最适和寒冷条件下的芽苗干重
hwe116突变株具有更厚的叶片,单位叶片面积的叶绿素含量更高。突变株显示出延缓叶片衰老和氧化胁迫抗性。
植物们生长在最适条件下,每3英寸盆1株,在生长箱中(16hr光照,300uE,22℃,相对湿度70%)。初进开花时,从三个最新鲜的完全长成的叶片中取三个叶盘(每个86.6um2),放入含有滤纸的平板培养皿中,滤纸上有5μM的N,N-二甲基-4,4′-联吡啶二氯(百草枯)溶液作为氧化剂。含有叶片盘的平板在150uE光照下连续25小时。这导致叶绿素漂白。通过测量叶片盘的叶绿素含量来定量测定突变株和对照组漂白程度的区别。同样从没有被百草枯处理的叶片中取一小叶盘,测定最佳叶片叶绿素含量。同时称重这些叶盘。结果表明,突变株具有较高的单位叶面积总叶绿素含量(见表5),不过突变株的叶片较厚(与对照组相比,突变株叶盘要重15至24%)。每克新鲜叶片组织叶绿素的含量,因此没有什么不同。目前在突变株与对照组之间的叶绿素a和叶绿素b的比率还没有什么差异。hwe116突变株显示了氧化胁迫抗性,随着百草枯处理,叶绿素含量提高了5至7%(见表5)。hwe116突变株的叶片衰老也被延缓(数据未显示)。
表5 氧化胁迫对叶片叶绿素含量的影响
在低氮培养基上,突变的hwe116幼苗生长显示出较少的的抑制作用
十二株幼苗生长在含有1/2MS培养基的琼脂平板上(每项6个平板),培养基中含有最适的(20mM)或低的(0.3mM)氮含量。将平板放入生长室中,以18hr的光照期(100UE)垂直培养6天,然后平板水平放置,幼苗再生长4天,收获芽苗。计算每块平板上经过10天生长的幼苗的平均芽苗干重。结果见表6。生长在最适条件下的hwe116突变株的芽苗干重明显降低,但当在低氮水平下生长时,没有显着差异。与最适氮水平相比,低氮水平的突变株的芽苗干重比对照组高3至7%。这表明突变株可能有更好的氮源利用效率。
表6.氮源对幼苗芽苗干重的影响
PK220基因敲除突变株显示出耐旱趋势及在干旱处理是具有较高的水分利用效率
从SALK研究所获得的AtPK220基因T-DNA敲除的植物品系(SALK_147838)生长(每个3”盆5株)在最适条件下的生长室中(18hr光照,150uE,22℃,相对湿度60%)直到第一次开花(n=8/项目/收获)。通过使用相同数量的水浇灌所有的植物以及停止进一步浇水来起始干旱处理。每天称量盆重,在干旱处理的第0,2,4天收获植物用于测定芽苗干重。结果表明:与野生型对照相比,基因敲除突变株相对于第2天的芽苗干重,盆的第2天水分损失明显降低(13%),第2天的芽苗干重显著提高(24%)。此结果与耐旱表型一致。
结果表明,该基因敲除突变株的水分利用效率比对照-野生型高,这是由于当使用相同的数量的水作为对照时(表7),基因敲除突变株能够在处理的第2天积累更多的芽苗生物量。
表7.干旱处理条件下的水分利用效率
35S--HP--At(270)PK220构建体在拟南芥的转基因株系中显示耐旱性
植物生长(每盆5株,8盆/项/收获)在最适条件下的生长室中(18hr光照,150uE,22℃,60%相对湿度),直到开花的第一天。通过使用相同数量的水浇灌所有的植物以及停止进一步浇水来起始干旱处理。每天称量盆重,在干旱处理的第4天收获植物用于测定芽苗干重。结果(表8)显示,13个转基因品系中的11个表现出耐旱表型(相对于4日的芽苗生物量,2天的水分损失较少)。这些品系中的四株表现出了开花期的延迟(1天),与hwe116突变株一样。与野生型对照相比,大部分转基因品系植物在第4天的最终芽苗生物量有所提高。这些结果都是转基因品系PK220表达下调的耐旱表型的指标。作为示例,前三个品系65-4,38-5,和59-3的AtPK220表达水平分别下降低了75%,47%和58%。
表8. 35S-HP-At(270)PK220转基因品系的耐旱性和芽苗干重(4天),相对于野生型(WT)以及hwe116突变株相对于亲代对照。
35S--HP--At(270)PK220转基因品系拟南芥的耐旱性以及增强的水分利用效率被确认
35S-HP-At(270)PK220转基因品系,每盆5株生长在最适条件下的生长室中(18hr光照,150uE,22℃,60%相对湿度),直到开花的第一天(n=8)。通过使用相同数量的水浇灌所有的植物以及停止进一步浇水来起始干旱处理。干旱处理的4天每天称量盆重,在干旱处理的第0,2,4天收获植物用于测定芽苗干重。结果证实,相对于对照组,5个转基因品系的相对于2天的芽苗生物量的2天的水分损失较低,确认了它们的耐旱表型(表9)。5个转基因品系的第2天芽苗干重较大。
表9. 35S-HP-At(270)PK220转基因株系的耐旱性和芽苗干重
在4天干旱处理过程中,三种转基因品系的水分利用效率比对照要高,增强的水分利用效率是由于芽苗干重积累变大了(表10)。
表10. 35S--HP-At(270)PK220转基因品系在干旱处理过程中第0天和第4天的水分利用效率。
拟南芥35S--HP--At(270)PK220转基因品系具有相对于芽苗生物量来说较低的水分损失以及在最适条件下具有增强的水分利用效率。
各种植物,35S-HP-At(270)PK220转基因株系65-7和59-5,野生哥伦比亚型,hwe116突变株及其亲本,生长(每3英寸盆5株)在最适条件下的生长箱中(22℃,18hr光照,200uE,60%相对湿度),直到第一朵花开(n=8/组项目/收获)。第1朵花开时,限水条件组的所有盆用相同数量的水浇灌(前4天一个盆重120克,后3天升至130克,由于植物越涨越大,他们需要更多的水)。每天称量盆重,来确定每日水分损失量,在该处理条件下的第0天和第7天收获植物。通过芽苗生物量与水分损失的比率来计算水分利用效率(WUE)。结果如表11所示。
表11.最适条件下的水分利用效率
结果表明,在最适水分条件下,两种转基因品系以及突变株具有增强的水分利用效率。
最适和限水条件下,35S--HP--At(270)PK220转基因拟南芥的生长速率均大于对照组
35S-HP-At(270)PK220转基因株系65-4和野生哥伦比亚型植物,生长(每3英寸盆5株)在最适条件下的生长箱中(22℃,18hr光照,150uE,60%相对湿度),直到第一朵花开(n=8/项目/处理/收获)。第1朵花开时,限水条件组的所有盆用相同数量的水浇灌(至盆重95g),进一步的浇水停止2天。对于限水条件组植物,需要2天才能达到初始土壤含水量的约30%(约55克总盆重),这被称为前处理。在那时限水条件处理已被视为已开始(处理的0日),植物每天浇水至总盆重55克,连续3天,并在随后的4天加到65克(直到处理第7天)。最适组维持在最适条件下,在预处理的2天以及处理的前3天每日浇水至总盆重100克,处理的后4天每日浇水至总盆重130克(因为植物越长越大他们需要更多的水)。测量所有植物的每日水分损失,在处理的第0,1,2,3,5和7天收获两组中的植物来进行芽苗干重测定。相对于芽苗生物量(耐旱型)的水分损失,由在处理开始前的最初2天,处理的前3天及处理的后4天叠加计算。在最适条件(表12)和限水条件(表13)下的结果显示如下。转基因株系65-4在最适和限水条件下,相对于芽苗生物量,失去的水比野生型少。在限水条件下,这与增强的抗旱性表型一致。
表12.最适条件下水分损失(g)/芽秒干重(g)
表13.限水条件下水分损失(g)/芽秒干重(g)以及耐旱性(以野生型百分比表示)。
两种处理情况下分别计算了七天中的植物的生长率。结果表明,在两种处理条件下,转基因株系65-4比野生型的植物更大(高达24%)。转基因品系的生长速率(7天处理过程中每天几倍的芽苗干重),在最适条件和限水两种条件下(分别为63.3毫克苗/天和21.3毫克苗/天),比野生型(分别为58.3毫克苗/天和20.4毫克苗/天)略有提高。
在限氮条件下,拟南芥35S--HP--At(270)PK220转基因品系以及hwe116突变株比对照组生长的更好。
35S-HP-At(270)PK220转基因株系65-5,其隔离的空对照(空65-1)和野生型(WT),再加上hwe116突变株及其亲本对照,在最适和限氮条件下,进行幼苗生长的特征分析。氮含量指的是植物生长可用的氮元素,包括硝酸盐和和铵盐氮源。幼苗生长在琼脂板上(每板10株,每个项目每处理条件5块板),平板中含有最适养分(包括20mM氮源)或低(限制生长)氮(除了氮源为0.5mM外,其他所有营养为最适条件)。板被放置在一个18hr光照,200μE和22℃的生长箱中。幼苗生长14天后,收获芽苗生物量(8苗),并测定叶绿素(2苗)。在最适条件平板中,平均幼苗芽苗生物量没有差别,除了hwe116突变株,如之前所示,芽苗生物量干重略小(不显着)。在低氮平板中,hwe116突变株有明显增大的芽苗干重,与亲代相比,生长抑制减少了30%。转基因株系65-5显示比对照组稍大的芽苗干重,比对照的生长抑制降低5%至7%(表14)。
表14.氮源对幼苗干重的影响
生长在低氮水平下的幼苗叶绿素总含量反映了芽苗干重的结果。叶绿素含量与可用氮源的关系非常密切,植物在氮源缺乏时的主要症状之一就是是叶萎黄或漂白。表15显示,转基因品系65-5和突变株hwe116的叶绿素含量的降低比对照要少。
表15.氮源对幼苗芽总叶绿素含量的影响
这些结果证实,hwe116突变株在限氮条件下生长的更好,转基因株系表现出同样的趋势。因此,植物中PK220基因的下调看来导致了氮源利用效率的增加(每单位可用氮源积累更多的生物量)。
拟南芥35S--HP--At(270)PK220转基因品系以及hwe116突变株发芽更快,在寒冷条件下发芽率较高
在寒冷(10℃)条件下进行发芽实验,含有35S--HP--At(270)PK220构建体的转基因株系65-5相对于野生型对照,以及hwe116突变株相对于其亲本对照,生长在含有最优培养基的琼脂平板上。每个项目四个平板,每个平板30粒种子,置于10℃,18hr光照(200μE)的生长箱中。以能萌发的种子的百分比评价发芽率(胚根的出现),从种子放入平板的第5天开始(前5天没有发芽),每天记录两次发芽率,连续5天。一旦观察不到发芽的进一步变化,将所有平板均放置在22℃的生长箱中以检查那些尚未发芽的种子的发育能力。所有项目显示出98至100%的种子发芽能力,hwe116突变株具有94%的发芽能力。在10℃下(表16)发芽的评估结果表明,转基因株系65-5发芽早于它的野生型对照。该hwe116突变株在寒冷条件下的发芽速率比其亲本对照的要高。这些数据,再加上在寒冷条件下突变株生长更好的证据表明,在低温胁迫下,种子和幼苗的活力更强。
表16.10℃时可萌发的种子的发芽百分比
最适条件下的气体交换测量数据支持了35S--HP--At(270)PK220转基因拟南芥的更高水分利用效率
在最适条件下,两种转基因株系和野生型植物生长在四英寸直径的盆中(每盆一株),生长箱为18hr光照(200uE),22℃,相对湿度60%。从第一次开花后8天,进行气体交换测量,测量最新鲜的,充分发展的叶片,每个项目重复10至11次。在环境生长光照和温度条件以及400ppm二氧化碳下,使用Li-6400和拟南芥叶管测定培养箱中的光合作用和蒸腾速率。从光合作用与蒸腾作用的比值,计算瞬时水分利用效率(WUE)。结果列于表17。转基因株系中的水分利用效率野生型的要高11和18%。这个数据与之前的水分利用效率测量的结果是一致的,那是在几天时间内使用生物量积累与水分损失的比率来测定蒸腾作用中的水分利用效率。
表17.最适条件下测定光合作用(umol二氧化碳/m2/s),蒸腾作用(mmol H2O/m2/s)和水分利用效率
35S--HP--At(270)PK220转基因拟南芥的耐旱性导致在干旱胁迫下种子产量和生物量的保护。
两种转基因株系和野生型植物生长(每3英寸盆5株,含有等量土壤)在最适条件下的生长箱中(22℃,18hr光照200uE,相对湿度60%),直到第一朵花开。在第一朵花开时,到一半植物采用干旱处理,而另一半则在最适条件下保持到成熟。干旱处理包括浇灌所有的植物至同样的饱和水位。然后每天对植物进行称重,来监测盆中的水分损失,每日通过浇灌所有的盆补偿它们的水含量与最重的盆一致。结果是,土壤水分含量下降,达到胁迫水平,植物在第4天萎蔫。在胁迫水平下再维持植物2天,在第6天重新浇灌所有的植物,并在最适条件下维持其生命周期的其余部分。成熟后,收获最适条件和干旱处理的植物,用于种子和芽苗生物量分析。通过比较最适条件和干旱处理的植株,确定干旱胁迫对种子产量和芽苗生物量的影响。结果如表18所示。在最适条件下,转基因植株的种子产量和最终的芽苗生物量比野生型高7至10%。在开花期伴随干旱胁迫,转基因植物种子产量和芽苗生物量的降低没有像野生型那么厉害,造成5-7%的种子产量保护和4%的芽苗生物量保护。通过转基因和野生型的种子产量或芽苗生物量与最适条件的百分比的区别来计算保护效果。
表18.最适及干旱胁迫植物的种子产量和最终芽苗生物量,n=10
在hwe116.2中过表达野生型AtPK220其背景可以恢复至野生型
35S-AtPK220转基因植物(在hwe116.2中)生长(每3英寸盆5株)在最适条件下的生长箱中,如之前所描述,直至第一朵花开。通过浇灌所有的植物至相同的饱和水平来进行干旱处理。停止进一步浇水。每天称重植物,以确定每目的水分损失,在处理的第4天收获所有植物,届时所有植物萎蔫。使用相对于最终芽苗生物量的水分损失来计算耐旱性,其中野生型假定为100%。数据如表19所示。三个转基因株系变现出的耐旱性比突变株水平有所降低,以相对于芽苗生物量,水分损失增加来表示。三个转基因株系开花也早于突变系,而类似与野生型的开花时间。这些结果支持这样的结论:在hwe116.2中的AtPK220基因突变造成了表型的改变,野生型基因的表达恢复了突变植物的野生型特征。
表19.相对于芽苗生物量的水分损失以及耐旱性,n=8
利用AtPK220-启动子(PPK)在拟南芥中下调AtPK220导致植物的耐旱性增强
PPK-HP-At(270)PK220拟南芥植株生长(每3英寸盆5株)在最适条件下的生长箱中,如前所述,直到第一个朵花开。通过浇灌所有的植物至相同的饱和水平来进行干旱处理。停止进一步浇水。每天称重植物,以确定每目的水分损失,在处理的第4天收获所有植物(所有植物萎蔫)。使用相对于最终芽苗生物量的水分损失来计算耐旱性,其中野生型假定为100%。研究的结果如表20所示。
表20.相对于芽苗生物量的水分损失以及耐旱性,n=8
其中一个转基因株系,14-04,表现出比野生型对照更强的耐旱性,以相对于芽苗生物量,水分损失减少来表示。这一结果被14-04品系的数据支持,14-04品系的PK220基因表达几乎完全被抑制。相对于野生型,根部的AtPK220表达量下降了近96%。这些结果表明,在根部下调PK220足以得到显着的耐旱性表型以及大概提高的水分利用效率。
在拟南芥hwe116突变株中过表达油菜PK220可以恢复其野生型
35S-BnPK220转基因植物(在hwe116中)加上两个空对照(转基因品系中分离的同胞,不含转基因,因此为hwe116突变株)生长(每3英寸盆5株)在最适条件下的生长箱中,如前所述,直到第一个朵花开。通过浇灌所有的植物至相同的饱和水平来进行干旱处理。停止进一步浇水。每天称重植物,以确定每目的水分损失,在处理的第4天收获所有植物(所有植物萎蔫)。使用相对于最终芽苗生物量的水分损失来计算耐旱性,其中野生型假定为100%。研究的结果如表20所示。结果表明,与空对照(hwe116突变株背景)相比,6种品系的植株耐旱性降低8%或更多,因此恢复至野生型。这表明BnPK220是具有功能的,可以在拟南芥中发挥作用。
表21.相对于芽苗干重的水分损失以及耐旱性,n=8
含有35S-AtPK220L292F构建体的转基因油菜品系显示出耐旱性和较高的水分利用效率
使用显性-阴性策略在甘蓝型油菜中表达突变的AtPK220等位基因,证实了内源性PK220活性的下调。三种含有拟南芥突变AtPK220L292F基因的转基因油菜品系,以及相对应的每个空对照品系(转基因品系中分离的同胞,不含转基因)生长在4.5英寸直径的盆中,含有等量的无土栽培混合物(Sunshine Professional Organic Mix #7),最适条件为16hr光照(400uE),日温22℃夜温18℃。在四叶期,分别采用两种处理。在最适处理中,植物被浇灌至饱和,用塑料袋覆盖盆,以防止水从盆中蒸发损失。这些植物每天称重连续7天,确定盆中因蒸腾作用导致的水分损失量,然后每天往每个盆中加入相同量的水保持植物处于最适水分条件下。在干旱处理中,所有植物浇灌至饱和水平。用塑料袋覆盖盆,每天称重。但是,这些盆每天只浇灌到最重的花盆水平。这种处理进行7天,土壤含水量逐步达到胁迫水平。第5天植物开始枯萎。在结束的第7天,收获两组植物用于测定芽苗生物量。
在干旱处理的第3天和第4天,进行了两种转基因品系植物以及它们的空对照的气体交换测量。采用Li-6400测量了处于400uE光照,400ppm二氧化碳及22℃稳定状态生长条件下,叶片3的光合作用和蒸腾作用。从光合作用于蒸腾作用的比率来计算水分利用效率(WUE。干旱处理的植物用来计算耐旱性(与空对照的百分比)。使用第3天到第7天之间累积的每日蒸腾水分损失,相对于最终芽苗干重,进行计算,并将其校准到空对照(设置为100%)。
表22的结果表明,转基因品系具有更强的耐旱性趋势。这是相对于芽苗干重水分损失较少的结果,这也是最适条件下显示出的一个表型。
气体交换数据(表23)显示,干旱处理的第3和第4天,转基因植株的水分利用效率比对照组稍高(4至16%)。
从光合作用与蒸腾作用的比率计算出的水分利用效率,只提供了一个单点瞬时测量而不是处理期间的累计测量,其结果可能不是很重要。
总之,35S-AtPK220L292F转基因甘蓝型植物的数据表明,当使用来自外源物种的AtPK220L292F基因时,水分利用效率技术可转移到甘蓝型油菜。
表22.在最适和干旱处理中,相对于最终的芽苗干重,第3天到第7天之间的水分损失。耐旱性(适当的空对照的百分比)。n=8
表23.干旱处理中第3天和第4天的光合作用(umol二氧化碳/m2/s),蒸腾作用(mmol H2O/m2/s)和水分利用效率(光合作用/蒸腾作用)。n=8
序列ID参考表
序列表
>SEQIDNO:1
ATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTCTCTAATTCTTTTGATGATCTTCATCACTGTCTCTGCTTCTTCTGCTTCAAATCCTTCTTTAGCTCCTGTTTACTCTTCCATGGCTACATTCTCTCCTCGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTCTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGA
>SEQIDNO:2
MRELLLLLLLHFQSLILLMIFITVSASSASNPSLAPVYSSMATFSPRIQMGSGEEDRFDAHKKLLIGLIISFSSLGLIILFCFGFWVYRKNQSPKSINNSDSESGNSFSLLMRRLGSIKTQRRTSIQKGYVQFFDIKTLEKATGGFKESSVIGQGGFGCVYKGCLDNNVKAAVKKIENVSQEAKREFQNEVDLLSKIHHSNVISLLGSASEINSSFIVYELMEKGSLDEQLHGPSRGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGLAVSLDEH6KNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLTPAQCQSLVTWAMPQLTDRSKLPNIVDAVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:3
ATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTCTCTAATTCTTTTGATGATCTTCATCACTGTCTCTGCTTCTTCTGCTTCAAATCCTTCTTTAGCTCCTGTTTACTCTTCCATGGCTACATTCTCTCCTCGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTTTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGA
>SEQIDNO:4
MRELLLLLLLHFQSLILLMIFITVSASSASNPSLAPVYSSMATFSPRIQMGSGEEDRFDAHKKLLIGLIISFSSLGLIILFCFGFWVYRKNQSPKSINNSDSESGNSFSLLMRRLGSIKTQRRTSIQKGYVQFFDIKTLEKATGGFKESSVIGQGGFGCVYKGCLDNNVKAAVKKIENVSQEAKREFQNEVDLLSKIHHSNVISLLGSASEINSSFIVYELMEKGSLDEQLHGPSRGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGFAVSLDEHGKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLTPAQCQSLVTWAMPQLTDRSKLPNIVDAVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:5
ATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTTTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGATTCACAGA
>SEQIDNO:6
MGSGEEDRFDAHKKLLIGLIISFSSLGLIILFCFGFWVYRKNQSPKSINNSDSESGNSFSLLMRRLGSIKTQRRTSIQKGYVQFFDIKTLEKATGGFKESSVIGQGGFGCVYKGCLDNNVKAAVKKIENVSQEAKREFQNEVDLLSKIHHSNVISLLGSASEINSSFIVYELMEKGSLDEQLHGPSRGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGFAVSLDEHGKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLTPAQCQSLVTWAMPQLTDRSKLPNIVDAVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:7
ATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTCTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAA6ATGATTCACAGA
>SEQIDNO:8
MGSGEEDRFDAHKKLLIGLIISFSSLGLIILFCFGFWVYRKNQSPKSINNSDSESGNSFSLLMRRLGSIKTQRRTSIQKGYVQFFDIKTLEKATGGFKESSVIGQGGFGCVYKGCLDNNVKAAVKKIENVSQEAKREFQNEVDLLSKIHHSNVISLLGSASEINSSFIVYELMEKGSLDEQLHGPSRGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGLAVSLDEHGKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLTPAQCQSLVTWAMPQLTDRSKLPNIVDAVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:9
ATCAAAAACTTTTCTTTTCTTAGCAAAAAAAACAAAAAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTCTCTAATTCTTTTGATGATCTTCATCACTGTCTCTGCTTCTTCTGCTTCAAATCCTTCTTTAGCTCCTGTTTACTCTTCCATGGCTACATTCTCTCCTCGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTCTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGATTCACAGAAACACGCCAAAAGAAATCCAAAGCCATTTAGATGATTTTCTTTTATCCTTTGCCTTTATATTTTTTTGTATAGGGTTATGATCCACTCATCTGAAAGTTTGGGGGTAAGAATGTGAGAATATAAGTTTTCAGGGTTGTTGAGTTCTATATAATTATATTTGTTTCTTTTTATTGTCAAATATAATTATATTTTTGT
>SEQIDNO:10
AAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTCTCTAATTCTTTTGATGATCTTCATCACTGTCTCTGCTTCTTCTGCTTCAAATCCTTCTTTAGCTCCTGTTTACTCTTCCATGGCTACATTCTCTCCTCGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTCTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGATTCACAG
>SEQIDNO:11
TCTGTGTCAGGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTCTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGATTCACAG
>SEQIDNO:12
TCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTC
>SEQIDNO:13
TCTGTGTCAGGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTC
>SEQIDNO:14
TGTTAAAAGCGATTTATAATTTACACCGTTTTGGTGTATATTTCTATCTATCCTTTTACAAGACCTATATATGTTATGTTATGGTGGTGTACTATTTTAAGTGAGCGACATAGTATTTTCTTCATATAGCTAATTAATCAACAACAATTTCCCAACTTACAACTATTTGCGTACTTTAAACTTATATTGAAAGAGAACTACAAAATTATTTTTTTGTACAAGAGAATTATGGTCTTCGGATCAATAATTTCTCTAGATATAATATGTAAAGCCAACCCTATAATTTGTAAAATCCATGATTTGATATAATTTTCTTTTAAAATTGTGAATTGGCAGACAAAAACAACATTACATTTTGATTTAAATTCATAACTTTGACTTGCTAAGGAAACACCATGATTCATTTTTTGTCATTTGTTACATCATCACTAGAAATATTTGATCTAACTTTATTATGATAATAGACTACATACTACATATGCAGTTACGATTTTAAATACTACATATTTAAGCGTGTTTAAACTGTAACCATATCATATAAAATGACATATCTAAAAGTGATTTTCAATATTTTGATATGATATGTGTTGTAGCACGGATAATGATCTAATTTTTAAGTAATAAGCTTGTTCATTACAAAAGAGAAGAAAGTAGTATTGGGCCATGATTATGTAAGGACAAAATAGGAAGATGTGGAAGAAGCCATTCGAGGGTTTTATTACAAAAACAGAGTATATAATTGGTCATAATGTTTTATTCACTTAATTTAACATTATTGCATTATATTTTCATGAACACATATTTCTTTAACTAAAAATATACACATATTTCTTATTGTAGATGAAGTGAAAAGAACAATATTTGGGTTCACATCTATGGGTGAATCCTTTTAATCACCCCCTAAAATAAAAAAGGTGCCATATTTCTATTTTTAGAGAAAGATATAGAGCACCATTGGAGTGGTTTTGCTCCAAATATAGAGTTTAGAGAAATATATAATACACCATTGGAGATGCTCTAAAATGAATTTATTTATTTATTTAGATGGAAGATTCTAATTGGTTAGAAAAAGAGGAAGTGAATAATAGGATTCACCTATAAGAGTGAACCCAAGTATTTTTAAGAGATAATGTGTAAAGTAAATAGATGGTCATTGTGTGAATTATGAATAGAACCATGGTTTTCCATTTTTAATTGCTTAACATAGGGTAATCAACAATGGGGTTTAATATGTCAATAGACAATAGTAAAGAAAGTATTTGATCTATCCCAAATCTTTCTTCGTTCGTTAGTTCATCACTTTCTTTCTTTTTGGTTATATTAATGGTAGAGAACTAAAAATTCAACTTTTTATTCAAAAGCTCCCTTTCTCTTTCCCTCCTTTATTTGCCATAAAAGTGATTTCAAGAAGACAGCGAGAGAGAAAGTGATAGTTCGTTCACTCTTCGCTTTCTCAAGAATTTCAAAACACCAAAAAAGTCTTTAGATTGAATTTCATCAAAAACTTTTC
>SEQIDNO:15
AGACAAGAAAAAAGGAAACAAAATTTTATGAAAGAGATCTCCATTAGAGAAAGAGAGAGCGAGAGAGAGATTAATCTTGGAAGAGCAATCTCACATTCTCACACTGCTCTTAGAAAATCTCTCTTTCACCATTAAAAATCCCAAAGAGTCTGGAGAA
>SEQIDNO:16
ATGGGAAAGATTCTTCATCTTCTTCTTCTTCTTCTTAAGGTCTCTGTTCTTGAATTCATCATTAGTGTTTCTGCTTTTACTTCACCTGCTTCACAGCCTTCTCTTTCTCCTGTTTACACTTCCATGGCTTCCTTTTCTCCAGGGATCCACATGGGCAAAGGCCAAGAACACAAGTTAGATGCACACAAGAAACTTCTAATCGCTCTCATAATCACCTCATCTTCTCTAGGACTAATACTTGTATCTTGTTTATGCTTTTGGGTTTATTGGTCTAAGAAATCTCCCAAAAACACCAAGAACTCAGGTGAGAGTAGGATTTCATTATCCAAGAAGGGCTTTGTGCAGTCCTTCGATTACAAGACACTAGAGAAAGCAACAGGCGGTTTCAAAGACGGTAATCTTATAGGACGAGGCGGGTTCGGAGATGTTTACAAGGCCTGTTTAGGCAACAACACTCTAGCAGCAGTCAAAAAGATCGAAAACGTTAGTCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGATTTGTTGAGCAAGATTCACCACCCGAACATCATCTCATTGTTTGGATATGGAAATGAACTCAGTTCGAGTTTTATCGTCTACGAGCTGATGGAAAGCGGATCATTGGATACACAGTTACACGGACCTTCTCGGGGATCGGCTTTAACATGGCACATGCGGATGAAGATTGCTCTTGATACAGCAAGAGCTGTTGAGTATCTCCACGAGCGTTGTCGTCCTCCGGTTATCCACAGAGATCTTAAATCGTCAAATATTCTCCTTGATTCTTCCTTCAACGCCAAGATTTCGGATTTTGGTCTTGCGGTAATGGTGGGGGCTCACGGCAAAAACAACATTAAACTATCAGGAACACTTGGTTATGTTGCTCCAGAATATCTCCTAGATGGAAAATTGACGGATAAGAGTGATGTTTATGCGTTTGGTGTGGTTTTACTTGAACTCTTGTTAGGAAGACGGCCGGTTGAGAAATTGAGTTCGGTTCAGTGTCAATCTCTTGTCACTTGGGCAATGCCCCAACTTACGGATAGATCAAAGCTTCCGAAAATCGTGGATCCGGTTATCAAAGATACAATGGATCATAAGCACTTATACCAGGTGGCAGCCGTGGCAGTGCTTTGTGTACAACCAGAACCGAGTTATCGACCGTTGATAACCGATGTTCTTCACTCACTAGTTCCATTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAATACCATCATCGTCTTGA
>SEQIDNO:17
MGKILHLLLLLLKVSVLEFIISVSAFTSPASQPSLSPVYTSMASFSPGIHMGKGQEHKLDAHKKLLIALIITSSSLGLILVSCLCFWVYWSKKSPKNTKNSGESRISLSKKGFVQSFDYKTLEKATGGFKDGNLIGRGGFGDVYKACLGNNTLAAVKKIENVSQEAKREFQNEVDLLSKIHHPNIISLFGYGNELSSSFIVYELMESGSLDTQLHGPSRGSALTWHMRMKIALDTARAVEYLHERCRPPVIHRDLKSSNILLDSSFNAKISDFGLAVMVGAHGKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLSSVQCQSLVTWAMPQLTDRSKLPKIVDPVIKDTMDHKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLIPSSS
>SEQIDNO:18
ATGAAGCAAATTGTTATAACAGCTCTTGTTTTACTACAAGCTTATGTTCTTCATCAATCCACATGTGTTATGTCCCTTACTACACAAGAATCTCCTTCTCCTCAACCTTCTGCTTTCACTCCCGCCTTATCTCCTGATTATCAACAGAGAGAGAAGGAATTGCATAAACAAGAGAGTAACAACATGAGACTGGTTATTTCACTAGCAGCTACATTTTCCTTAGTTGGTATAATCTTACTTTGCTCTCTGCTTTATTGGTTTTGCCATAGGAGAAGAAACCTCAAGAGCTCAGGTTGTGGGTGTAGTGGAATCACATTCTTGAATCGGTTTAGTCGCTCAAAAACATTAGACAAGAGAACTACAAAGCAGGGAACAGTGTCATTGATCGATTACAATATACTAGAAGAAGGAACTAGTGGTTTCAAGGAGAGTAACATTTTGGGTCAAGGTGGATTTGGATGTGTATATTCTGCCACATTAGAGAACAACATTTCAGCTGCGGTTAAGAAGCTAGACTGTGCCAATGAAGATGCAGCAAAGGAATTTAAGAGTGAGGTTGAGATATTGAGTAAGCTCCAGCACCCGAATATAATATCCCTTTTGGGTTATAGCACGAATGATACTGCGAGATTCATTGTCTATGAGCTGATGCCAAACGTTTCTCTGGAATCTCATTTACACGGATCTTCTCAGGGTTCGGCGATCACATGGCCTATGAGGATGAAGATTGCTCTTGATGTAACAAGGGGATTAGAATATTTGCATGAACATTGTCATCCAGCAATCATTCACAGGGACTTGAAATCATCCAACATCTTATTAGATAGCAATTTCAATGCTAAGATTTCAGATTTTGGTCTAGCTGTTGTTGATGGGCCAAAGAACAAGAACCATAAACTTTCCGGGACAGTTGGCTACGTTGCACCAGAGTATCTTCTCAACGGCCAATTGACAGAAAAGAGCGACGTGTATGCTTTTGGAGTAGTGTTATTAGAGCTTTTACTCGGGAAAAAACCTGTGGAGAAACTAGCTCCCGGTGAATGCCAATCCATCATCACTTGGGCAATGCCTTATCTCACTGATAGAACCAAGTTACCAAGCGTCATAGATCCTGCGATTAAAGATACGATGGACTTGAAACACCTTTACCAGGTAGCGGCAGTGGCGATTTTGTGCGTGCAGCCAGAACCGAGTTATAGACCGTTGATTACAGACGTCTTGCATTCTCTTATACCTTTGGTTCCAATGGAACTTGGTGGAACCTTAAAAACCATCAAATGTGCTTCAATGGATCACTGTTAA
>SEQIDNO:19
MKQIVITALVLLQAYVLHQSTCVMSLTTQESPSPQPSAFTPALSPDYQQREKELHKQESNNMRLVISLAATFSLVGIILLCSLLYWFCHRRRNLKSSGCGCSGITFLNRFSRSKTLDKRTTKQGTVSLIDYNILEEGTSGFKESNILGQGGFGCVYSATLENNISAAVKKLDCANEDAAKEFKSEVEILSKLQHPNIISLLGYSTNDTARFIVYELMPNVSLESHLHGSSQGSAITWPMRMKIALDVTRGLEYLHEHCHPAIIHRDLKSSNILLDSNFNAKISDFGLAVVDGPKNKNHKLSGTVGYVAPEYLLNGQLTEKSDVYAFGVVLLELLLGKKPVEKLAPGECQSIITWAMPYLTDRTKLPSVIDPAIKDTMDLKHLYQVAAVAILCVQPEPSYRPLITDVLHSLIPLVPMELGGTLKTIKCASMDHC
>SEQIDNO:20
ATGAAGACTATGTCCAAATCGTCTTTGCGTTTGCATTTTCTCTCGCTACTCTTACTTTGTTGTGTCTCCCCTTCAAGCTTTGTCATTATAAGATTCATTACACATAATCATTTTGATGGTCTAGTACGTTGTCATCCCCACAAGTTTCAAGCCCTTACGCAGTTCAAGAACGAGTTTGATACCCGCCGTTGCAACCACAGTAACTACTTTAATGGAATCTGGTGTGATAACTCCAAGGTGCGGTCACAAAGCTACGACTACGGGACTGTCTCAGTGGAACTCTCAAATCAAACAGTAGCCTCTTCCAGTTTCATCATCTTCGCTACCTTGATCTCTCTCACAACAACTTCACCTCCTCTTCCCTCCCTTCCGAGTTTGTTTCCCACTTTGCGGAATCTAACCAAGCTCACAGTTTTAGACCTTTCTCATAATCACTTCTCCGGAACTTTGAAGCCCAACAATAGCCTCTTTGAGTTACACCACCTTCGTTACCTTAATCTCGAGGTCAACAACTTCAGTTCCTCACTCCCTTCCGAGTTTGGCTATCTCAACAATTTACAGCACTGTGGCCTCAAAGAGTTCCCAAACATATTCAAGACCCTTAAAAAAATGGAGGCTATAGACGTATCCAACAATAGAATCAACGGGAAAATCCCTGAGTGGTTATGGAGCCTTCCTCTTCTTCATTTAGTGAATATTTTAAATAATTCTTTTGACGGTTTCGAAGGATCAACGGAAGTTTTAGTAAATTCATCGGTTCGGATATTACTTTTGGAGTCAAACAACTTTGAAGGAGCACTTCCTAGTCTACCACACTCTATCAACGCCTTCTCCGCGGGTCATAACAATTTCACTGGAGAGATACCTCTTTCAATCTGCACCAGAACCTCACTTGGTGTCCTTGATCTAAACTACAACAACCTCATTGGTCCGGTTTCTCAATGTTTGAGTAATGTCACGTTTGTAAATCTCCGGAAAAACAATTTGGAAGGAACTATTCCTGAGACTTTCATTGTCGGTTCCTCGATAAGGACACTTGATGTTGGATACAATCGACTAACGGGAAAGCTTCCAAGGTCTCTTTTGAACTGCTCATCTCTAGAGTTTCTAAGCGTTGACAACAACAGAATCAAAGACACATTTCCTTTCTGGCTCAAGGCTTTACCAAAGTTACAAGTCCTTACCCTAAGTTCAAACAAGTTTTATGGTCCTATATCTCCTCCTCATCAAGGTCCTCTCGGGTTTCCAGAGCTGAGAATACTTGAGATATCTGATAATAAGTTTACTGGAAGCTTGTCGTCAAGATACTTTGAGAATTGGAAAGCATCGTCCGCCATGATGAATGAATATGTGGGTTTATATATGGTTTACGAGAAGAATCCTTATGGTGTAGTTGTCTATACCTTTTTGGATCGTATAGATTTGAAATACAAAGGTCTAAACATGGAGCAAGCGAGGGTTCTCACTTCCTACAGCGCCATTGATTTTTCTAGAAATCTACTTGAAGGAAATATTCCTGAATCCATTGGACTTTTAAAGGCATTGATTGCACTAAACTTATCGAACAACGCTTTTACAGGCCATATTCCTCAGTCTTTGGCAAATCTTAAGGAGCTCCAGTCACTAGACATGTCTAGGAACCAACTCTCAGGGACTATTCCTAATGGACTCAAGCAACTCTCGTTTTTGGCTTACATAAGTGTGTCTCATAACCAACTCAAGGGTGAAATACCACAAGGAACACAAATTACTGGGCAATTGAAATCTTCCTTTGAAGGGAATGTAGGACTTTGTGGTCTTCCTCTCGAGGAAAGGTGCTTCGACAATAGTGCATCTCCAACGCAGCACCACAAGCAAGACGAAGAAGAAGAAGAAGAACAAGTGTTACACTGGAAAGCGGTGGCAATGGGGTATGGACCTGGATTGTTGGTTGGATTTGCAATTGCATATGTCATTGCTTCATACAAGCCGGAGTGGCTAACCAAGATAATTGGTCCGAATAAGCGCAGAAACTAG
>SEQIDNO:21
MKTMSKSSLRLHFLSLLLLCCVSPSSFVIIRFITHNHFDGLVRCHPHKFQALTQFKNEFDTRRCNHSNYFNGIWCDNSKVRSQSYDYGTVSVELSNQTVASSSFIIFATLISLTTTSPPLPSLPSLFPTLRNLTKLTVLDLSHNHFSGTLKPNNSLFELHHLRYLNLEVNNFSSSLPSEFGYLNNLQHCGLKEFPNIFKTLKKMEAIDVSNNRINGKIPEWLWSLPLLHLVNILNNSFDGFEGSTEVLVNSSVRILLLESNNFEGALPSLPHSINAFSAGHNNFTGEIPLSICTRTSLGVLDLNYNNLIGPVSQCLSNVTFVNLRKNNLEGTIPETFIVGSSIRTLDVGYNRLTGKLPRSLLNCSSLEFLSVDNNRIKDTFPFWLKALPKLQVLTLSSNKFYGPISPPHQGPLGFPELRILEISDNKFTGSLSSRYFENWKASSAMMNEYVGLYMVYEKNPYGVVVYTFLDRIDLKYKGLNMEQARVLTSYSAIDFSRNLLEGNIPESIGLLKALIALNLSNNAFTGHIPQSLANLKELQSLDMSRNQLSGTIPNGLKQLSFLAYISVSHNQLKGEIPQGTQITGQLKSSFEGNVGLCGLPLEERCFDNSASPTQHHKQDEEEEEEQVLHWKAVAMGYGPGLLVGFAIAYVIASYKPEWLTKIIGPNKRRN
>SEQIDNO:22
ATGACTTCCTCTCGCCGTCTTCTTCTTCCTCTCGGAGCATCGCTCACTAGAGGAAGATTTTCTTCCGATCAAATCCGAAATGGATTTCTAAGAAACTTCCGTGGATTCGCCACCGTAACTTCGTCGGAACCGGCCTTAGCCAATCTGGAAGCGAAATATGCCGTAGCGTTGCCAGAATGTTCAACAGTAGAGGACGAGATCACGAAGATCCGTCATGAATTCGAGTTAGCGAAACAGAGGTTTCTTAATATCCCTGAAGCTATTAATAGTATGCCGAAGATGAATCCTCAAGGGATATATGTGAATAAGAATCTGAGATTGGATAATATACAAGTTTATGGATTTGATTATGATTACACTTTGGCACATTACTCTTCTCACTTACAGAGTTTGATCTATGATCTTGCCAAGAAACATATGGTTAATGAGTTTAGATATCCTGATGTTTGCACTCAGTTTGAGTATGATCCTACTTTTCCAATCCGTGGGTTGTACTATGATAAACTAAAAGGATGCCTCATGAAATTGGATTTCTTCGGTTCAATCGAGCCAGATGGGTGTTATTTTGGTCGTCGTAAGCTTAGTAGGAAGGAAATAGAAAGCATGTATGGAACGCGGCACATAGGTCGTGATCAAGCGAGAGGTTTGGTGGGATTGATGGATTTCTTCTGTTTTAGCGAGGCGTGTCTTATAGCAGACATGGTGCAATATTTTGTTGACGCCAAACTTGAGTTTGATGCCTCTAACATCTACAATGATGTCAATCGTGCTATTCAACATGTCCATAGAAGTGGATTGGTTCATAGAGGAATTCTTGCTGATCCCAACAGATATTTGCTAAAAAATGGTCAGCTTCTACGTTTCCTGAGAATGCTAAAAGATAAAGGAAAGAAGCTTTTTTTGCTGACCAACTCTCCGTATAATTTTGTTGATGGCGGAATGCGCTTTCTAATGGAGGAATCTTTTGGCTTCGGAGATTCCTGGCGAGAACTCTTTGATGTTGTGATTGCTAAAGCAAATAAACCAGAATTTTACACATCTGAGCACCCTTTCCGTTGTTATGATTCGGAGAGGGATAATTTGGCATTTACAAAAGTGGATGCATTTGACCCAAAGAAAGTTTATTATCATGGTTGTCTTAAATCCTTCCTTGAAATCACAAAGTGGCATGGCCCTGAGGTGATTTATTTCGGAGATCACTTATTTAGTGATCTAAGAGGGCCTTCAAAAGCTGGTTGGCGAACTGCTGCCATAATTCATGAGCTCGAGCGAGAGATACAGATACAAAATGATGATAGCTACCGGTTTGAGCAGGCCAAGTTCCATATTATCCAAGAGTTACTCGGTAGATTTCACGCGACTGTATCAAACAATCAGAGAAGTGAAGCATGCCAATCACTTTTGGATGAGCTGAACAATGCGAGGCAGAGAGCAAGAGACACGATGAAACAAATGTTCAACAGATCGTTTGGAGCTACATTTGTCACAGACACTGGTCAAGAATCAGCATTCTCTTATCACATCCACCAATACGCAGACGTTTATACCAGTAAACCTGAGAACTTTCTGTTATACCGACCTGAAGCCTGGCTTCACGTTCCTTACGATATCAAGATCATGCCACATCATGTCAAGGTTGCTTCAACCCTTTTCAAAACCTGA
>SEQIDNO:23
MTSSRRLLLPLGASLTRGRFSSDQIRNGFLRNFRGFATVTSSEPALANLEAKYAVALPECSTVEDEITKIRHEFELAKQRFLNIPEAINSMPKMNPQGIYVNKNLRLDNIQVYGFDYDYTLAHYSSHLQSLIYDLAKKHMVNEFRYPDVCTQFEYDPTFPIRGLYYDKLKGCLMKLDFFGSIEPDGCYFGRRKLSRKEIESMYGTRHIGRDQARGLVGLMDFFCFSEACLIADMVQYFVDAKLEFDASNIYNDVNRAIQHVHRSGLVHRGILADPNRYLLKNGQLLRFLRMLKDKGKKLFLLTNSPYNFVDGGMRFLMEESFGFGDSWRELFDVVIAKANKPEFYTSEHPFRCYDSERDNLAFTKVDAFDPKKVYYHGCLKSFLEITKWHGPEVIYFGDHLFSDLRGPSKAGWRTAAIIHELEREIQIQNDDSYRFEQAKFHIIQELLGRFHATVSNNQRSEACQSLLDELNNARQRARDTMKQMFNRSFGATFVTDTGQESAFSYHIHQYADVYTSKPENFLLYRPEAWLHVPYDIKIMPHHVKVASTLFKT
>SEQIDNO:24
ATGGAGATTCCGGCGGCGCCGCCGCCTCCATTGCCGGTGCTGTGCTCGTACGTCGTCTTCTTGCTGCTGCTGTCTTCGTGCTCACTGGCCAGAGGGAGGATCGCGGTTTCTTCCCCGGGCCCGTCGCCTGTGGCCGCCGCCGTTACAGCCAATGAGACCGCTTCATCCTCTTCTTCTCCGGTGTTTCCGGCCGCTCCTCCCGTCGTGATCACAGTGGTGAGGCACCACCATTACCACCGGGAGCTGGTCATCTCCGCTGTCCTCGCCTGCGTCGCCACCGCCATGATCCTCCTCTCCACACTCTACGCCTGGACGATGTGGCGGCGGTCTCGCCGGACCCCCCACGGCGGCAAGGGCCGCGGCCGGAGATCAGGGATCACACTGGTGCCAATCCTGAGCAAGTTCAATTCAGTGAAGATGAGCAGGAAGGGGGGCCTTGTGACGATGATCGAGTACCCGTCGCTGGAGGCGGCGACAGGCAAGTTCGGCGAGAGCAATGTGCTCGGTGTCGGCGGCTTCGGTTGCGTTTATAAGGCGGCGTTTGATGGCGGTGCCACCGCCGCCGTGAAGAGGCTTGAAGGCGGCGGGCCGGATTGCGAGAAGGAATTCGAGAATGAGCTGGATTTGCTTGGCAGGATCAGGCACCCAAACATAGTGTCTCTCCTGGGCTTCTGTGTCCATGGTGGCAATCACTACATTGTTTATGAGCTCATGGAGAAGGGATCATTGGAGACACAGCTGCATGGGTCTTCACATGGATCTGCTCTGAGCTGGCACGTTCGGATGAAGATCGCGCTCGATACGGCGAGGGGATTAGAGTATCTTCATGAGCACTGCAATCCACCTGTGATCCATAGGGATCTGAAACCTTCTAATATACTTTTAGATTCAGACTTCAATGCTAAGATTGCAGATTTTGGCCTTGCGGTCACCGGTGGGAATCTCAACAAAGGGAACCTGAAGCTTTCCGGGACCTTGGGTTATGTAGCCCCTGAGTACTTATTAGATGGGAAGTTGACTGAGAAGAGCGATGTATACGCATTTGGAGTAGTGCTTCTAGAGCTCCTGATGGGAAGGAAGCCTGTTGAGAAAATGTCACCATCTCAGTGCCAATCAATTGTGTCATGGGCTATGCCTCAGCTGACCGACAGATCGAAGCTCCCCAACATAATTGACCTGGTGATCAAGGACACCATGGACCCAAAACACTTGTACCAAGTTGCAGCAGTGGCTGTTCTATGTGTGCAGCCCGAACCGAGCTACAGACCACTGATAACAGATGTTCTCCACTCTCTTGTTCCTCTAGTGCCTGCGGAGCTCGGAGGAACACTCAGGGTTGCAGAGCCACCTTCACCTTCTCCAGACCAAAGACATTATCCTTGTTGA
>SEQIDNO:25
ATGAAGAAACTGGTTCATCTTCAGTTTTTGTTTCTTGTCAAGATCTTTGCTACTCAATTCCTCACTCCTTCTTCATCATCTTTTGCTGCTTCAAATCCTTCTATAGCTCCTGTTTACACCTCCATGACTACTTTCTCTCCAGGAATTCAAATGGGAAGTGGTGAAGAACACAGATTAGATGCACATAAGAAACTCCTGATTGGTCTTATAATCAGTTCCTCTTCTCTTGGTATCATAATCTTGATTTGCTTTGGCTTCTGGATGTACTGTCGCAAGAAAGCTCCCAAACCCATCAAGATTCCGGATGCCGAGAGTGGGACTTCATCATTTTCAATGTTTGTGAGGCGGCTAAGCTCAATTAAAACTCACAGAACATCTAGCAATCAGGGTTATGTGCAGCGTTTCGATTCCAAGACGCTAGAGAAAGCGACAGGCGGTTTCAAAGACAGTAATGTAATCGGACAGGGCGGTTTCGGATGCGTTTACAAGGCTTCTTTGGACAGCAACACTAAAGCAGCGGTTAAAAAGATCGAAAACGTTACCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGAGCTGTTGAGCAAGATCCAGCACTCCAATATTATATCATTGTTGGGCTCTGCAAGTGAAATCAACTCGAGTTTCGTCGTTTATGAGTTGATGGAGAAAGGATCCTTAGATGATCAGTTACATGGACCTTCGTGTGGATCCGCTCTAACATGGCATATGCGTATGAAGATTGCTCTAGATACAGCTAGAGGACTAGAGTATCTCCATGAACATTGTCGTCCACCAGTTATCCACAGGGACCTGAAATCGTCTAATATTCTTCTTGATTCTTCCTTCAATGCCAAGATTTCAGATTTTGGTCTGGCTGTATCGGTTGGAGTGCATGGGAGTAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATATCTCCTAGACGGAAAGTTGACGGATAAGAGTGATGTCTATGCATTTGGGGTGGTTCTTCTTGAACTTTTGTTGGGTAGGCGGCCGGTTGAGAAATTGAGTCCATCTCAGTGTCAATCTCTTGTGACTTGGGCAATGCCACAACTTACCGATAGATCGAAACTCCCAAACATCGTGGATCCGGTTATAAAAGATACAATGGATCTTAAGCACTTATACCAAGTAGCAGCCATGGCTGTGCTGTGCGTACAGCCAGAACCGAGTTACCGGCCGCTGATAACCGATGTTCTTCATTCACTTGTTCCATTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACCCGATGA
>SEQIDNO:26
MKKLVHLQFLFLVKIFATQFLTPSSSSFAASNPSIAPVYTSMTTFSPGIQMGSGEEHRLDAHKKLLIGLIISSSSLGIIILLCFGFWMYCRKKAPKPIKIPDAESGTSSFSMFVRRLSSIKTHRTSSNQGYVQRFDSKTLEKATGGFKDSNVIGQGGFGCVYKASLDSNTKAAVKKIENVTQEAKREFQNEVELLSKIQHSNIISLLGSASEINSSFVVYELMEKGSLDDQLHGPSCGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGLAVSVGVHGSNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLSPSQCQSLVTWAMPQLTDRSKLPNIVDPVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:27
ATTTTTGGTGTTGAAATGATGCACAACGGATCTTTGGAATCCCAATTGCATGGTCCGTCTCATGGAACTGGCTTAAGCTGGCAGCATCGAATGAAAATTGCACTTGATATTGCACGAGGACTAGAGTATCTTCACGAGCGCTGTACCCCGCCTGTGATTCATAGAGATCTGAAATCGTCCAACATTCTTCTAGGTTCGAACTACAATGCTAAACTTTCTGATTTCGGGCTCGCGATTACTGGTGGGATTCAGGGCAAGAACAACGTAAAGCTTTCGGGAACATTAGGTTATGTAGCTCCAGAATACCTCTTAGATGGTAAACTTACTGATAAAAGTGATGTTTATGCGTTTGGAGTTGTACTTCTTGAACTTTTGATAGGTAGAAAACCAGTGGAGAAAATGTCACCATCTCAATGCCAATCTATCGTTACATGGGCAATGCCTCAACTAACCGACCGATCAAAGCTTCCTAACATCGTTGATCCCGTGATTAGAGATACAATGGACTTGAAGCACTTGTATCAAGTTGCTGCGGTTGCTGTGCTATGTGTACAACCGGAACCGAGTTACAGGCCATTGATAACAGATGTTTTGCATTCGTTCATCCCACTTGTACCTGTTGAGCTTGGAGGGTCGCTAAGAGTTACCGAATCTTGA
>SEQIDNO28
IFGVEMMHNGSLESQLHGPSHGTGLSWQHRMKIALDIARGLEYLHERCTPPVIHRDLKSSNILLGSNYNAKLSDFGLAITGGIQGKNNVKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLIGRKPVEKMSPSQCQSIVTWAMPQLTDRSKLPNIVDPVIRDTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIPLVPVELGGSLRVTES
>SEQIDNO:29
AATTCGGCACGAGGGCTGGATTCCAGTTTTAATGCAAAGCTTTCAGATTTTGGCCTTTCTGTGACTGCTGGAACCCAGAGTAGGAATGTTAAGATCTCTGGAACTCTGGGTTATGTTGCCCCGGAGTACCTATTAGAAGGAAAACTAACTGATAAAAGTGATGTATATGCTTTCGGAGTTGTATTGCTGGAACTTTTGATGGGGAGAAGGCCTGTGGAAAAGATGTCACCAACTCAATGTCAATCAATGGTCACATGGGCCATGCCTCAGCTCACCGATAGATCAAAGCTTCCAAACATTGTGGATCCAGTAATTAGAGACACAATGGATTTAAAGCACTTATACCAGGTAGCCGCTGTGGCAGTGCTATGTATACAACCTGAACCAAGTTATAGGCCATTGATAACCGACGTTCTGCATTCCCTCATTCCTCTTGTACCTACCGACCTTGGAGGGTCACTCCGAGTGACCTAA
>SEQIDNO:30
NSARGLDSSFNAKLSDFGLSVTAGTQSRNVKISGTLGYVAPEYLLEGKLTDKSDVYAFGVVLLELLMGRRPVEKMSPTQCQSMVTWAMPQLTDRSKLPNIVDPVIRDTMDLKHLYQVAAVAVLCIQPEPSYRPLITDVLHSLIPLVPTDLGGSLRVT
>SEQIDNO:31
GGATTGTGTTTGTGGCTTTATCATTTGAAGTACTCCTTCAAATCCAGTAACAAGAATGCAAAGAGCAAAGATTCTGAGAATGGAGTTGTGTTATCATCATTTTTGGGCAAATTCACTTCTGTGAGGATGGTTAGTAAGAAGGGATCTGCTATTTCATTTATTGAGTATAAGCTGTTAGAGAAAGCCACCGACAGTTTTCATGAGAGTAATATATTGGGTGAGGGTGGATTTGGATGTGTTTACAAGGCTAAATTGGATGATAACTTGCACGTCGCTGTCAAAAAATTAGATTGTGCAACACAAGATGCCGGCAGAGAATTTGAGAATGAGGTGGATTTGCTGAGTAATATTCACCACCCAAATGTTGTTTGTCTGTTGGGTTATAGTGCTCATGATGACACAAGGTTTATTGTTTATGAATTGATGGAAAATCGGTCCCTTGATATTCAATTGCATGGTCCTTCTCATGGATCAGCATTGACTTGGCATATGCGAATGAAAATTGCTCTTGATACCGCTAGAGGATTAGAATATTTACATGAGCACTGCAACCCTGCAGTCATTCATAGAGATCTGAAATCCTCCAATATACTTCTAGATTTCCAAGTTTAATGCTAAGCTCTCAGATTTTGGTCTTGCCATAACCGATGGATCCCAAAACAAGAACAATCTTAAGCTTTCGGGCACTTTGGGATATGTGGCTCCCGAGTATCTTTTAGATGGTAAATTGACAGACAAGAGTGATGTCTATGCTTTTGGAGTTGTGCTTCT
>SEQIDNO:32
GLCLWLYHLKYSFKSSNKNAKSKDSENGVVLSSFLGKFTSVRMVSKKGSAISFIEYKLLEKATDSFHESNILGEGGFGCVYKAKLDDNLHVAVKKLDCATQDAGREFENEVDLLSNIHHPNVVCLLGYSAHDDTRFIVYELMENRSLDIQLHGPSHGSALTWHMRMKIALDTARGLEYLHEHCNPAVIHRDLKSSNILLDSKFNAKLSDFGLAITDGSQNKNNLKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLL
>SEQIDNO:33
GCATTGACATGGCATCTTAGGATGAAAATTGCCCTTGATGTAGCTAGAGGATTAGAATTTTTGCATGAGCACTGCCACCCAGCAGTGATCCATAGAGATCTGAAATCATCTAATATCCTTCTGGATTCAAATCTCAATGCTAAGCTATCTGATTTTGGTCTTGCCATTCTTGATGGGGCTCAAAATAAGAACAACATCAAGCTTTCTGGAACCTTGGGCTATGTAGCTCCAGAGTACCTCTTAGATGGTAAATTGACTGACAAGAGTGATGTTTATGCTTTTGGAGTGGTGCTTTTGGAGCTTCTCCTGAGAAGAAAGCCTGTGGAGAAGCTGGCACCAGCTCAATGCCAATCTATAGTCACATGGGCTATGCCTCAGCTGACAGATAGATCAAAGCTTCCAAACATCGTGGATCCTGTGATTAGAAATGCTATGGATATAAAGCACTTATTCCAGGTTGCTGCAGTCGCTGTGCTATGCGTGCAGCCTGAACCAAGCTATCGACCACTGATAACAGATGTGTTGCATTCCCTTGTTCCCCTTGTTCCTATGGAGCTTGGCGGGACGCTCAGAGTTGAACGACCTGCTTCTGTGACCTCTCTGTTGATTGATTCTACCTGA
>SEQIDNO:34
ALTWHLRMKIALDVARGLEFLHEHCHPAVIHRDLKSSNILLDSNLNAKLSDFGLAILDGAQNKNNIKLSGTLGYVAPEYLLDGKLTDK5DVYAFGVVLLELLLRRKPVEKLAPAQCQSIVTWAMPQLTDRSKLPNIVDPVIRNAMDIKHLFQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPMELGGTLRVERPASVTSLLIDST
>SEQIDNO:35
ACTGAGGTGACCCGGAAGAAAAACAGGGTAAAGCTATCGGGCACTTTGGGTTATGTAGCCCCAGAATATGTCTTGGATGGTAAATTGACTGATAAGAGTGATGTCTATGCCTTTGGAGTTGTGCTTTTGGAGCTCCTTTTGAGAAGAAGGCCTCTTGAGATAGTAGCACCCACTCAGTGCCAGTCTATTGTTACATGGGCCATGCCTCAGCTGACCGACCGAACTAAGCTTCCAGATATTGTGGATCCTGTAATTAGAGATGCGATGGATGTCAAGCACTTATACCAGGCAGCTGCTGTTGCTGTTTTGTGTCTGCAACCAGAACCGATCTACCGGCCACTGATAACGGATGTACTCCACTCTCTCATTCCACTTGTACCCGTTGAACTTGGGGGAACGCTGAAGACCTAG
>SEQIDNO:36
TEVTRKKNRVKLSGTLGYVAPEYVLDGKLTDKSDVYAFGVVLLELLLRRRPLEIVAPTQCQSIVTWAMPQLTDRTKLPDIVDPVIRDAMDVKHLYQAAAVAVLCLQPEPIYRPLITDVLHSLIPLVPVELGGTLKT
>SEQIDNO:37
ACGAGGCCTCGTGCCATACTTTTGGATTCAGATTTCAATGCCAAGATTTCGGATTTCGGTCTTGCAGTGTCAAGTGGAAATCGCACCAAAGGTAATCTGAAGCTTTCCGGAACTTTGGGCTATGTTGCTCCTGAGTACTTATTAGACGGGAAGTTGACAGAGAAGAGTGATGTATATGCGTTCGGAGTAGTACTTCTTGAGCTTTTGTTAGGAAGGAGGCCAATTGAGAAGATGGCCCCATCTCAATGCCAATCAATTGTTACATGGGCCATGCCTCAGCTAATTGACAGATCAAAGCTCCCAACCATAATTGACCCCGTGATCAGGAACACGATGGACCTGAAGCACTTGTACCAAGTTGCTGCAGTGGCTGTGCTCTGTGTGCAGCCAGAACCAAGTTATAGGCCACTAATCACAGATGTGCTCCACTCTCTGATTCCCCTGGTGCCCATGGAGCTCGGAGGGTCACTGAGGGCTACCTTGGAATCGCCTCGCGTATCACAACATCGTTCTCCCTGCTGA
>SEQIDNO:38
TRPRAILLDSDFNAKISDFGLAVSSGNRTKGNLKLSGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLLGRRPIEKMAPSQCQSIVTWAMPQLIDRSKLPTIIDPVIRNTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLIPLVPMELGGSLRATLESPRVSQHRSPC
>SEQIDNO:39
CCTTTATTGAATAGATTGAACTCCTTCCGTGGTTCTAGGAGAAAGGGATGTGCATATATAATTGAATATTCTCTGCTGCAAGCAGCCACAAATAATTTTAGTACAAGTGACATCCTTGGAGAGGGTGGTTTTGGGTGTGTATACAGAGCTAGGTTAGATGATGATTTCTTTGCTGCTGTGAAGAAGTTAGATGAGGGCAGCAAGCAGGCTGAGTATGAATTTCAGAATGAAGTTGAACTAATGAGCAAAATCAGACATCCAAATCTTGTTTCTTTGCTGGGGTTCTGCATTCATGGGAAGACTCGGTTGCTAGTCTACGAGCTCATGCAAAATGGTTCTTTGGAAGACCAATTACATGGGCCATCTCATGGATCCGCACTTACATGGTACCTGCGCATGAAAATAGCCCTTGATTCAGCAAGGGGTCTAGAACACTTGCACGAGCACTGCAATCCTGCTGTGATTCATCGTGATTTCAAATCATCAAATATCCTTCTGGATGCAAGCTTCAATGCCAAGCTTTCAGATTTTGGTCTTGCAGTAACAGCTGCAGGAGGTATTGGTAATGCTAATGTCGAGCTACTGGGCACTTTGGGATATGTAGCTCCAGAATACCTGCTTGATGGCAAGTTGACGGAGAAAAGTGATGTCTATGGATTTGGAGTTGTTCTTTTGGAGCTAATTATGGGAAGAAAGCCAGTTGATAAATCTGTGGCAACTGAAAGTCAATCGCTAGTTTC
>SEQIDNO:40
PLLNRLNSFRGSRRKGCAYIIEYSLLQAATNNFSTSDILGEGGFGCVYRARLDDDFFAAVKKLDEGSKQAEYEFQNEVELMSKIRHPNLVSLLGFCIHGKTRLLVYELMQNGSLEDQLHGPSHGSALTWYLRMKIALDSARGLEHLHEHCNPAVIHRDFKSSNILLDASFNAKLSDFGLAVTAAGGIGNANVELLGTLGYVAPEYLLDGKLTEKSDVYGFGVVLLELIMGRKPVDKSVATESQSLVS
>SEQIDNO:41
ATGAAAATGAAGCTTCTCCTCATGCTTCTTCTTCTTGTTCTTCTTCTTCACCAACCCATTTGGGCTGCAGACCCTCCTGCTTCTTCTCCTGCTTTATCTCCAGGGGAGGAGCAGCATCACCGGAATAATAAAGTGGTAATAGCTATCGTCGTAGCCACCACTGCACTTGCTGCACTCATTTTCAGTTTCTTATGCTTCTGGGTTTATCATCATACCAAGTATCCAACAAAATCCAAATTCAAATCCAAAAATTTTCGAAGTCCAGATGCAGAGAAGGGGATCACCTTAGCACCGTTTGTGAGTAAATTCAGTTCCATCAAGATTGTTGGCATGGACGGGTATGTTCCAATAATTGACTATAAGCAAATAGAAAAAACGACCAATAATTTTCAAGAAAGTAACATCTTGGGTGAGGGCGGTTTTGGACGTGTTTACAAGGCTTGTTTGGATCATAACTTGGATGTTGCAGTCAAAAAACTACATTGTGAGACTCAACATGCTGAGAGAGAATTTGAGAACGAGGTGAATATGTTAAGCAAAATTCAGCATCCGAATATAATATCTTTACTGGGTTGTAGCATGGATGGTTACACGAGGCTCGTTGTCTATGAGCTGATGCATAATGGATCATTGGAAGCTCAGTTACATGGACCTTCTCATGGCTCGGCATTGACTTGGCACATGAGGATGAAGATTGCTCTTGACACAGCAAGAGGATTAGAATATCTGCACGAGCACTGTCACCCTGCAGTGATCCATAGGGATATGAAATCTTCTAATATTCTCTTAGATGCAAACTTCAATGCCAAGCTGTCTGATTTTGGTCTTGCCTTAACTGATGGGTCCCAAAGCAAGAAGAACATTAAACTATCGGGTACCTTGGGATACGTAGCACCGGAGTATCTTCTAGATGGTAAATTAAGTGATAAAAGTGATGTCTATGCTTTTGGGGTTGTGCTATTGGAGCTCCTACTAGGAAGGAAGCCAGTAGAAAAACTGGTACCAGCTCAATGCCAATCTATTGTCACATGGGCCATGCCACACCTCACGGACAGATCCAAGCTTCCAAGCATTGTGGATCCAGTGATTAAGAATACAATGGATCCCAAGCACTTGTACCAGGTTGCTGCTGTAGCTGTGCTGTGCGTGCAACCAGAACCTAGTTACCGTCCACTGATCATTGATGTTCTTCACTCACTCATCCCTCTTGTTCCCATTGAGCTTGGAGGAACACTAAGAGTTTCACAAGTAATT
>SEQIDNO:42
MKMKLLLMLLLLVLLLHQPIWAADPPASSPALSPGEEQHHRNNKVVIAIVVATTALAALIFSFLCFWVYHHTKYPTKSKFKSKNFRSPDAEKGITLAPFVSKFSSIKIVGMDGYVPIIDYKQIEKTTNNFQESNILGEGGFGRVYKACLDHNLDVAVKKLHCETQHAEREFENEVNMLSKIQHPNIISLLGCSMDGYTRLVVYELMHNGSLEAQLHGPSHGSALTWHMRMKIALDTARGLEYLHEHCHPAVIHRDMKSSNILLDANFNAKLSDFGLALTDGSQSKKNIKLSGTLGYVAPEYLLDGKLSDKSDVYAFGVVLLELLLGRKPVEKLVPAQCQSIVTWAMPHLTDRSKLPSIVDPVIKNTMDPKHLYQVAAVAVLCVQPEPSYRPLIIDVLHSLIPLVPIELGGTLRVSQVI
>SEQIDNO:43
ACTCAAGCATCAAAATATTGTAAATCTTTTGGGTATTGTGTTCATGATGACACAAGGTTTTTGGTCTATGAAATGATGCATCAAGGCTCTTTGGACTCACAATTGCATGGACCAACTCATGGAACCGCATTAACCTGGCATCGAAGAATGAAAGTCGCACTTGATATTGCTCGAGGATTAGAGTATCTTCATGAACGATGCAACCCGCCTGTGATTCATAGAGATCTTAAGTCATCGAACATTTTGCTAGATTCCAATTTCAATGCTAAAATTTCGAATTTTGCACTTGCTACCACTGAGCTCCATGCGAAGAACAAAGTTAAGCTTTCGGCTACTTCTGGTTATTTGGCTCCGGAATACCTATCAGAAGGTAAACTTACCGATAAAAGCGACGTATATGCATTCGGAGTAGTACTTCTTGGGCTTTTAATCGGTAGAAAACCAGTGGAGAAAATGTCACCATCTTTATTTCAATCTATTGTCACATGGGCAATGCCTCAGTTAACAGACCGGTCAAAGCTTCCAAACATCGTTGACCCTGTGATTAGAGATACAATGGACCTGAAGCACTTATATCAAGTTGCTGCTGTAGCCGTACTTTGCGTGCAACCCGAACCAAGTTACAGACCGTTGATTACAGACGTACTACACTCATTCATTCCACTCGTACCCGTTGATCTTGGAGGGTCATTAAGAGCTTAA
>SEQIDNO:44
TQASKYCKSFGYCVHDDTRFLVYEMMHQGSLDSQLHGPTHGTALTWHRRMKVALDIARGLEYLHERCNPPVIHRDLKSSNILLDSNFNAKISNFALATTELHAKNKVKLSATSGYLAPEYLSEGKLTDKSDVYAFGVVLLGLLIGRKPVEKMSPSLFQSIVTWAMPQLTDRSKLPNIVDPVIRDTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIPLVPVDLGGSLRA
>SEQIDNO:45
CGATCATTTCGTTGCGGCTGTAAAAAACTCCATGGTCCAGAACCAGATGCCCAAAAAGGGTTTGAGAATGAAGTAGATTGGTTAGGTAAACTCAAGCATCAAAATATTGTAAATTTTTTGGGTTATTGTGTTCATGATGACACAAGGTTTTTGGTCTATGAAATGATGCATCAAGGCTCTTTGGACTCACAATTGCATGGACCAACTCATGGAACCGCATTAACCTGGCATCGAAGAATGAAAGTCGCACTTGATATTGCTCGAGGATTAGAGTATCTTCATGAACGATGCAACCCGCCTGTGATTCATAGAGATCTCAAGTCATCGAACATTTTGCTAGATTCCAATTTCAATGCTAAAATTTCGAATTTTGCACTTGCTACCACTGAGCTCCATGCGAAGAACAAAGTTAAGCTTTCGGGTACTTCTGGTTATTTGGCTCCGGAATACCTATCCGAAGGTAAACTTACCGATAAAAGTGATGTATATGCATTCGGAGTAGTACTTCTTGAGCTTTTAATCGGTAGAAAACCAGTGGAGAAAATGTCACCATCTTTATTTCAATCTATTGTCACATGGGCAATGCCTCAGCTAACAGACCGGTCAAAGCTTCCAAACATTGTTGACCCTGTGATTAGAGATACAATGGACCTGAAGCACTTGTATCAAGTTGCTGCTGTAGCCGTACTTTGCGTGCAACCCGAACCAAGTTACAGACCGTTGATTACAGACGTACTACACTCATTCATTCC
>SEQIDNO:46
RSFRCGCKKLHGPEPDAQKGFENEVDWLGKLKHQNIVNFLGYCVHDDTRFLVYEMMHQGSLDSQLHGPTHGTALTWHRRMKVALDIARGLEYLHERCNPPVIHRDLKSSNILLDSNFNAKISNFALATTELHAKNKVKLSGTSGYLAPEYLSEGKLTDKSDVYAFGVVLLELLIGRKPVEKMSPSLFQSIVTWAMPQLTDRSKLPNIVDPVIRDTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIP
>SEQIDNO:47
ATGATGCATCAAGACTCTTTGGACTCACAATTGCATGGACCAACTCATGGAACCGCATTAACCTGGCATCGAAGAATGAAAGTCGCACTTGATATTGCTCGAGGATTAGAGTATCTTCATGAACGATGCAACCCGCCTGTGATTCATAGAGATCTCAAGTCATCGAACATTTTGCTAGATTCCAATTTCAATGCTAAAATTTCGAATTTTGCACTTGCTACCACTGAGCTCCATGCGAAGAACAAAGTTAAGCTTTCGGGTACTTCTGGTTATTTGGCTCCGGAATACCTATCCGAAGGTAAACTTACCGATAAAAGTGATGTATATGCATTCGGAGTAGTACTTCTTGAGCTTTTAATCGGTAGAAAACCAGTGGAGAAAATGTCACCATCTTTATTTCAATCTATTGTCACHTGGGCAATGCCTCAGCTAACAGACCGGTCAAAGCTTCCAAACATTGTTGACCCTGTGATTAGAGATACAATGGACCTGAAGCACTTGTATCAAGTTGCTGCTGTAGCCGTACTTTGCGTGCAACCCGAACCAAGTTACAGACCGTTGATTACAGACGTACTACACTCATTCATTCCACTCGTACCCGTTGATCTTGGAGGGTCATTAAGAGCTTAA
>SEQIDNO:48
MMHQDSLDSQLHGPTHGTALTWHRRMKVALDIARGLEYLHERCNPPVIHRDLKSSNILLDSNFNAKISNFALATTELHAKNKVKLSGTSGYLAPEYLSEGKLTDKSDVYAFGVVLLELLIGRKPVEKMSPSLFQSIVTWAMPQLTDRSKLPNIVDPVIRDTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIPLVPVDLGGSLRA
>SEQIDNO:49
AATTTGAGAGGTGAGCTGGATTTGCTTCAGAGGATTCAGCATTCGAATATAGTGTCCCTTGTGGGCTTCTGCATTCATGAGGAGAACCGCTTCATTGTTTATGAGCTGATGGTGAATGGATCACTTGAAACACAGCTTCATGGGCCATCACATGGATCAGCTCTGAGTTGGCACATTCGGATGAAGATTGCTCTTGATACAGCAAGGGGATTGGAGTATCTTCACGAGCACTGCAATCCACCAATCATCCATAGGGATCTGAAGTCGTCTAACATACTTTTGAATTCAGACTTTAATGCAAAGATTTCAGATTTTGGCCTTGCAGTGACAAGTGGAAATCGCAGCAAAGGGAATCTGAAGCTTTCCGGTACTTTGGGTTATGTTGCCCCTGAGTACTTACTAGATGGGAAGTTGACTGAGAAGAGCGATGTATATGCATTTGGAGTAGTACTTCTTGAGCTTCTTTTGGGAAGGAGGCCAGTTGAGAAGATGGCACCATCTCAGTGTCAATCAATTGTTACATGGGCCATGCCCCAGCTAATTGACAGATCCAAGCTCCCTACCATAATCGACCCCGTGATCAGGGACACGATGGATCGGAAGCACTTGTACCAAGTTGCTGCAGTGGCTGTGCTCTGCGTGCAGCCAGAACCAAGCTACAGGCCACTGATCACAGATGTCCTCCACTCTCTGATTCCCCTGGTGCCCATGGACCTTGGAGGGACGCTGAGGATCAACCCGGAATCGCCTTGCACGACACGAAATCAATCTCCCTGCTGA
>SEQIDNO:50
NLRGELDLLQRIQHSNIVSLVGFCIHEENRFIVYELMVNGSLETQLHGPSHGSALSWHIRMKIALDTARGLEYLHEHCNPPIIHRDLKSSNILLNSDFNAKISDFGLAVTSGNRSKGNLKLSGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLLGRRPVEKMAPSQCQSIVTWAMPQLIDRSKLPTIIDPVIRDTMDRKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLIPLVPMDLGGTLRINPESPCTTRNQSPC
>SEQIDNO:51
CGGGGGCTCTTATCACTCATTGCTGCTGCTACTGCACTGGGTACAAGCTTATTGCTCATGGGTTGCTTCTGGATTTATCATAGAAAGAAAATCCACAAATCTCATGACATTATTCATAGCCCAGATGTAGTTAAAGGTCTTGCATTATCCTCATATATTAGCAAATACAACTCCTTCAAGTCGAATTGTGTGAAACGACATGTCTCGTTGTGGGAGTACAATACACTCGAGTCGGCCACAAATAGTTTTCAAGAAAGCGAGATCTTGGGTGGAGGGGGGTTCGGGCTTGTGTACAAGGGAAAACTAGAAGACAACTTGTATGTAGCTGTGAAGAGGCTGGAAGTTGGAAGACAAAACGCAATTAAAGAATTCGAGGCTGAAATAGAGGTATTGGGCACGATTCAGCACCCGAATATAATTTCGTTGTTGGGATATAGCATTCATGCTGACACGAGGCTGCTAGTTTATGAACTGATGCAGAATGGATCTCTGGAGTATCAACTACATGGACCTTCCCATGGATCAGCATTAGCGTGGCATAATAGATTGAAAATCGCACTTGATACAGCAAGGGGATTAGAATATTTACATGAACATTGCAAACCACCAGTTATCCATAGAGATCTGAAATCCTCCAATATTCTTCTAGATGCCAACTTCAATGCCAAGATCTCAGATTTTGGTCTTGCTGTGCGCGATGGGGCTCAAAACAAAAATAACATTAAGCTCTCGGGAACCGTTGGCTATGTAGCTCCAGAATACCTATTAGATGGAATACTAACAGATAAAAGTGATGTTTATGGCTTCCGAGTTGTA
>SEQIDNO:52
RGLLSLIAAATALGTSLLLMGCFWIYHRKKIHKSHDIIHSPDVVKGLALSSYISKYNSFKSNCVKRHVSLWEYNTLESATNSFQESEILGGGGFGLVYKGKLEDNLYVAVKRLEVGRQNAIKEFEAEIEVLGTIQHPNIISLLGYSIHADTRLLVYELMQNGSLEYQLHGPSHGSALAWHNRLKIALDTARGLEYLHEHCKPPVIHRDHKSSNILLDANFNAKISDFGLAVRDGAQNKNNIKLSGTVGYVAPEYLLDGILTDKSDVYGFRVV
>SEQIDNO:53
GGGGATATACGTGTAGAATCAGCAACAAATAACTTCGGTGAAAGCGAGATATTAGGCGTAGGTGGATTTGGATGCGTGTATAAAGCTCGACTCGATGATAATTTGCATGTAGCTGTTAAAAGATTAGATGGTATTAGTCAAGACGCCATTAAAGAATTCCAGACGGAGGTGGATCTATTGAGTAAAATTCATCATCCGAATATCATCACCTTATTGGGATATTGTGTTAATGATGAAACCAAGCTTCTTGTTTATGAACTGATGCATAATGGATCTTTAGAAACTCAATTACATGGGCCTTCCAGTGGATCCAATTTAACATGGCATTGCAGGATGAAGATTGCTCTAGATACAGCAAGAGGATTAGAATATTTGCATGAGAACTGCAAACCATCGGTGATTCATAGAGATCTGAAATCATCTAATATCCTTCTGGATTCCAGCTTCAATGCTAAGCTTTCAGATTTTGGTCTTGCTATAATGGATGGGGCCCAGAACAAAAACAACATTAAGCTTTCAGGGACATTGGGTTATGTAGCTCCCGAGTATCTTTTAGATGGAAAATTGACGGATAAAAGTGACGTGTATGCGTTTGGAGTTGTGCTTTTAGAGCTTTTACTTGGAAGGCGACCTGTAGAAAAATTAGCAGAGTCGCAATGCCAATCTATTGTCACTTGGGCTATGCCACAATTAACAGACAGATCAAAGCTTCCGAATATTGTAGATCCCGTGATCAGATACACAATGGATCTCAAGCACCTGTACCAAGTTGCTGCGGTGGCTGTGTTATGTGTACAACCCGGACCAAGCTACCGGCCATTTATAAACCGACGTCTTGCATTCTCTGATCCCTCTTGTTCCCCGTGA
>SEQIDNO:54
GDIRVESATNNFGESEILGVGGFGCVYKARLDDNLHVAVKRLDGISQDAIKEFQTEVDLLSKIHHPNIITLLGYCVNDETKLLVYELMHNGSLETQLHGPSSGSNLTWHCRMKIALDTARGLEYLHENCKPSVIHRDLKSSNILLDSSFNAKLSDFGLAIMDGAQNKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLAESQCQSIVTWAMPQLTDRSKLPNIVDPVIRYTMDLKHLYQVAAVAVLCVQPGPSYRPFINRRLAFSDPSCSP
>SEQIDNO:55
AAGTTGAACTGTGAATGTCAATATGCTGAGAGAGAATTTGAGAATGAGGTGGATTTGTTAAGTAAAATTCAACATCCAAATGTAATTTCTCTACTGGGCTGTAGCAGTAATGAGGATTCAAGGTTTATTGTCTATGAGTTGATGCAAAATGGATCATTGGAAACTCAATTACATGGACCATCTCATGGCTCAGCATTGACTTGGCATATGAGGATGAAGATTGCTCTTGACACAGCTAGAGGTTTAAAATATCTGCATGAGCACTGCTACCCTGCAGTGATCCATAGAGATCTGAAATCTTCTAATATTCTTTTAGATGCAAACTTCAATGCCAAGCTTTCTGATTTTGGTCTTGCAATAACTGATGGGTCCCAAAACAAGAATAACATCAAGCTTTCAGGCACATTGGGGTATGTTGCCCCGGAGTATCTTTTAGATGGTAAATTGACAGATAAAAGTGATGTGTATGCTTTTGGAGTTGTGCTTCTTGAGCTTCTATTAGGAAGAAAGCCTGTGGAAAAACTTACACCATCTCAATGCCAGTCTATTGTCACATGGGCCATGCCACAGCTCACAGACAGATCCAAGCTTCCAAACATTGTGGATAATGTGATTAAGAATACAATGGATCCTAAGCACTTATACCAGGTTGCTGCTGTGGCTGTATTATGTGTGCAACCAGAGCCGTGCTACCGCCCTTTGATTGCAGATGTTCTACACTCCCTCATCCCTCTTGTACCTGTTGAGCTTGGAGGAACACTCAGAGTTGCACAAGTGACGCAGCAACCTAAGAATTCTAGTTAA
>SEQIDNO:56
KLNCECQYAEREFENEVDLLSKIQHPNVISLLGCSSNEDSRFIVYELMQNGSLETQLHGPSHGSALTWHMRMKIALDTARGLKYLHEHCYPAVIHRDLKSSNILLDANFNAKLSDFGLAITDGSQNKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRKPVEKLTPSQCQSIVTWAMPQLTDRSKLPNIVDNVIKNTMDPKHLYQVAAVAVLCVQPEPCYRPLIADVLHSLIPLVPVELGGTLRVAQVTQQPKNSS
>SEQIDNO:57
CAGTTGCATGGACCTCCTCGTGGATCAGCTTTGAATTGGCATCTTCGCATGGAAATTGCATTGGATGTGGCTAGGGGACTAGAATACCTCCATGAGCGCTGTAACCCCCCTGTAATCCATAGAGATCTCAAATCGTCTAATGTTCTATTGGATTCCTACTTCAATGCAAAGCTTTCTGACTTTTGGCCTAGCTATAGCTGGATGGAACTTAAACAAGAGCACCGTAAAGTCTTTCGGGAACTCTGGGATATGTGGCTCCAGAGTTACCTCTTAGATGGGAAATTAACTGATAAGAGTGATGTCTATGCTTTCGGCATTATACTTCTGGAGCTTCTAATGGGGAGAAGACCATTGGAGAAACTAGCAGGAGCTCAGTGCCAATCTATCGTCACATGGGCAATGCCACAGCTTACTGACAGGTCAAAGCTCCCAAATATTGTTGATCCTGTCATCAGAAACGGAATGGGCCTCAAGCACTTGTATCAAGTTGCTGCTGTAGCCGTGCTATGTGTACAACCAGAACCAAGTTACCGACCACTGATAACAGATGTCCTGCACTCCTTCATTCCCCTTGTACCAATTGAGCTTGGTGGGTCCTTGAGAGTTGTGGATTCTGCATTATCTGTTAACGCATAA
>SEQIDNO:58
QLHGPPRGSALNWHLRMEIALDVARGLEYLHERCNPPVIHRDLKSSNVLLDSYFNAKLSDFWPSYSWMELKQEHRKVFREIWDMWLQSYLLDGKLTDKSDVYAFGIILLEILMGRRPLEKLAGAQCQSIVTWAMPQLTDRSKLPNIVDPVIRNGMGLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIPLVPIELGGSLRVVDSALSVNA
>SEQIDNO:59
ATGGAGATGGCGCTAACTCCATTGCCGCTCCTGTGTTCGTCCGTCTTGTTCTTGGTGCTATCTTCGTGCTCGTTGGCCAATGGGAGGGATACGCCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTTCTCCGGCGACGTCTACTGTGGCCACCGGCATTTCCGCCGCCGCCGCCGCCGCCGCCAATGGGACGGCCGCCTTGTCTTCGGCAGTTCCGGCGCCTCCGCCTGTTGTGATCGTAGTGCACCACCATTTCCACCGCGAGCTGGTCATCGCCGCCGTCCTCGCCTGCATCGCCACCGTCACGATCTTCCTTTCCACGCTCTACGCTTGGACACTATGGCGGCGATCTCGCCGGAGCACCGGCGGCAAGGTCACCAGGAGCTCAGACGCAGCGAAGGGGATCAAGCTGGTGCCGATCTTGAGCAGGTTCAACTCGGTGAAGATGAGCAGGAAGAGGCTGGTTGGGATGTTCGAGTACCCGTCGCTGGAGGCAGCGACAGAGAAGTTCAGCGAGAGCAACATGCTCGGTGTCGGCGGGTTTGGCCGCGTCTACAAGGCGGCGTTCGACGCCGGAGTTACCGCGGCGGTGAAGCGGCTCGACGGCGGCGGGCCCGACTGCGAGAAGGAATTCGAGAATGAGCTGGATTTGCTTGGCAGGATCAGGCACCCCAACATTGTGTCCCTCTTGGGCTTCTGTATCCATGAGGGGAATCACTACATTGTTTATGAGCTGATGGAGAAGGGATCACTGGAAACACAGCTTCATGGGTCTTCACATGGATCAACTCTGAGCTGGCACATCCGGATGAAGATCGCCCTTGACACGGCCAGGGGATTAGAGTACCTTCATGAGCACTGCAGTCCACCAGTGATCCATAGGGATCTGAAATCGTCTAACATACTTTTGGATTCAGACTTCAATGCTAAGATTGCAGATTTTGGTCTTGCTGTGTCTAGTGGGAGTGTCAACAAAGGGAGTGTGAAGCTCTCCGGGACCTTGGGTTATGTAGCTCCTGAGTACTTGTTGGATGGGAAGTTGACTGAAAAGAGCGATGTATACGCGTTCGGAGTAGTGCTTCTAGAGCTCCTTATGGGGAGGAAGCCTGTTGAGAAGATGTCACCATCTCAGTGCCAATCAATTGTGACATGGGCAATGCCACAGTTGACCGACAGATCGAAGCTCCCCAGCATAGTTGACCCAGTGATCAAGGACACCATGGATCCAAAACACCTGTACCAAGTTGCAGCAGTGGCTGTTCTATGCGTGCAGGCTGAACCAAGCTACAGGCCACTGATCACAGATGTGCTCCACTCTCTTGTTCCTCTAGTGCCGACGGAGCTCGGAGGAACACTAAGAGCTGGAGAGCCACCTTCCCCGAACCTGAGGAATTCTCCATGCTGA
>SEQIDNO:60
MEMALTPLPLLCSSVLFLVLSSCSLANGRDTPSSSSSSSSSSSSSSSSSSSSSSPATSTVATGISAAAAAAANGTAALSSAVPAPPPVVIVVHHHFHRELVIAAVLACIATVTFLSTLYAWTLWRRSRRSTGGKVTRSSDAAKGIKLVPILSRFNSVKMSRKRLVGMFEYPSLEAATEKFSESNMLGVGGFGRVYKAAFDAGVTAAVKRLDGGGPDCEKEFENELDLLGRIRHPNIVSLLGFCIHEGNHYIVYELMEKGSLETQLHGSSHGSTLSWHIRMKIALDTARGLEYLHEHCSPPVIHRDLKSSNILLDSDFNAKIADFGLAVSSGSVNKGSVKLSGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLMGRKPVEKMSPSQCQSIVTWAMPQLTDRSKLPSIVDPVIKDTMDPKHLYQVAAVAVLCVQAEPSYRPLITDVLHSLVPLVPTELGGTLRAGEPPSPNLRNSPC
>SEQIDNO:61
TACTCTCTTTTACAAACTGCTACGAACAACTTCAGCTCCTCCAATTTGCTGGGCGAGGGAAGTTTCGGGCATGTGTATAAAGCGAGACTCGATTATGATGTCTATGCCGCTGTAAAGAGACTTACCAGCGTAGGAAAACAGCCCCAAAAAGAACTCCAGGGAGAGGTGGATCTGATGTGCAAGATAAGACATCCCAACTTGGTGGCTCTCCTGGGCTATTCAAATGACGGCCCAGAGCCCTTGGTTGTGTACGAGCTCATGCAGAATGGTTCACTTCATGATCAGCTTCATGGCCCCTCATGCGGGAGTGCACTCACCTGGTACCTACGACTAAAGATTGCTCTTGAAGCTGCCAGCAGAGGACTGGAGCACCTGCATGAAAGCTGCAAGCCTGCAATAATCCACAGAGACTTCAAGGCATCCAACATCCTCTTGGACGCCAGCTTCAATGCGAAGGTGTCCGACTTTGGTATAGCGGTAGCTCTGGAGGAAGGTGGCGTGGTGAAAGACGACGTACAAGTGCAAGGCACCTTCGGGTACATTGCTCCTGAGTACCTGATGGACGGGACATTGACAGAGAAGAGTGATGTTTACGGATTTGGAGTAGTATTGCTTGAGCTGCTGACAGGCAGACTGCCCATTGATACGTCCTTACCACTCGGATCGCAATCTCTAGTGACATGGGTAACACCCATACTAACTAACCGAGCAAAGCTGATGGAAGTTATCGACCCCACCCTTCAAGATACGCTGAACGTGAAGCAACTTCACCAGGTGGCCGCAGTGGCAGTCCTTTGCGTCCAAGCGGAACCCAGCTACCGCCCTCTCATCGCCGACGTGGTTCAGTCACTGGCTCCGCTGGTGCCTCAAGAGCTCGGCGGCGCATTGCGA
>SEQIDNO:62
YSLLQTATNNFSSSNLLGEGSFGHVYKARLDYDVYAAVKRLTSVGKQPQKELQGEVDLMCKIRHPNLVALLGYSNDGPEPLVVYELMQNGSLHDQLHGPSCGSALTWYLRLKIALEAASRGLEHLHESCKPAIIHRDFKASNILLDASFNAKVSDFGIAVALEEGGVVKDDVQVQGTFGYIAPEYLMDGTLTEKSDVYGFGVVLLELLTGRLPIDTSLPLGSQSLVTWVTPILTNRAKLMEVIDPTLQDTLNVKQLHQVAAVAVLCVQAEPSYRPLIADVVQSLAPLVPQELGGALR
>SEQIDNO:63
ACCTCAGATGCCTATAGGGGTATTCCACTCATGCCTCTCCTGAATCGTTTGAACTCCCGTATTTCCAAGAAGAAGGGATGTGCAACTGCAATTGAATATTCTAAGCTGCAAGCAGCTACAAATAACTTCAGCAGCAATAACATTCTTGGAGAGGGTGGATTTGCGTGTGTATACAAGGCCATGTTTGATGATGATTCCTTTGCTGCTGTGAAGAAGCTAGATGAGGGTAGCAGACAGGCTGAGCATGAATTTCAGAATGAAGTGGAGCTGATGAGCAAAATCCGACATCCAAACCTTGTTTCTTTGCTTGGGTTCTGCTCTCATGAAAATACACGGTTCTTAGTATATGATCTGATGCAGAATGGCTCTTTGGAAGACCAATTACATGGGCCATCTCACGGATCTGCACTTACATGGTTTTTGCGCATAAAGATAGCACTTGATTCAGCAAGGGGTCTAGAACACTTGCATGAGCACTGCAACCCTGCAGTGATTCATCGAGATTTCAAATCATCAAATATTCTTCTTGATGCAAGCTTCAACGCCAAGCTTTCAGATTTTGGTCTTGCAGTAACAAGTGCAGGATGTGCTGGCAATACAAATATTGATCTAGTAGGGACATTGGGATATGTAGCTCCAGAATACCTACTTGATGGTAAATTGACAGAGAAAAGTGATGTCTATGCATATGGAGTTGTTTTGTTGGAGCTACTTTTTGGAAGAAAGCCAATTGATAAATCTCTACCAAGTGAATGCCAATCTCTCATTTCTTGGGCAATGCCACAGCTAACAGATAGAGAAAAGCTCCCAACTATAGTAGACCCCATGATCAAAGGCACAATGAACTTGAAACACCTATATCAAGTAGCAGCTGTTGCAATGCTATGTGTGCAGCCAGAACCCAGTTACAGGCCATTAATAGCTGACGTTGTGCACTCTCTCATTCCTCTCGTACCAATAGAACTCGGGGGAACTTTAAAGCTCTCTAATGCACGACCCACTGAGATGAAGTTATTTACTTCTTCCCAATGCAGTGTTGAGATTGCTTCCAACCCAAAATTGTGA
>SEQIDNO:64
TSDAYRGIPLMPLLNRLNSRISKKKGCATAIEYSKLQAATNNFSSNNILGEGGFACVYKAMFDDDSFAAVKKLDEGSRQAEHEFQNEVELMSKIRHPNLVSLLGFCSHENTRFLVYDLMQNGSLEDQLHGPSHGSALTWFLRIKIALDSARGLEHLHEHCNPAVIHRDFKSSNILLDASFNAKLSDFGLAVTSAGCAGNTNIDLVGTLGYVAPEYLLDGKLTEKSDVYAYGVVLLELLFGRKPIDKSLPSECQSLISWAMPQLTDREKLPTIVDPMIKGTMNLKHLYQVAAVAMLCVQPEPSYRPLIADVVHSLIPLVPIELGGTLKLSNARPTEMKLFTSSQCSVEIASNPKL
>SEQIDNO:65
AATTCGGCACGAGGAGAACACTTGCACGAGCACTGCAACCCTGCAGTGATTCACCGAGATTTCAAATCATCAAATATTCTTCTTGATGCAAGCTTCAACGCCAAGCTTTCAGATTTTGGTCTTGCAGTAAAAAGTGCAGGATGTGCTGGTAACACAAATATTGATCTAGTAGGGACATTGGGATATGTAGCTCCAGAATACATGCTTGATGGTAAATTGACAGAGAAAAGTGATGTCTATGCATATGGAGTTGTTTTGTTAGAGCTACTTTTTGGAAGAAAGCCAATTGATAAATCTCTACCAAGTGAATGCCAATCTCTCATTTCTTGGGCAATGCCACAGCTAACAGATAGAGAAAAGCTCCCGACTATAATAGATCCCATGATCAAAGGCGCAATGAACTTGAAACACCTATATCAAGTGGCAGCTGTTGCAGTGCTATGTGTGCAGCCAGAACCCAGTTACAGGCCATTAATAGCTGACGTTGTGCACTCTCTCATTCCTCTCGTACCAGTAGAACTTGGGGGAACATTAAAGTCATCACCCACTGAGATGAAGTCATTTGCTTCTTCCCAATGCAGTGCCCACGTTGCTTC
>SEQIDNO:66
NSARGEHLHEHCNPAVIHRDFKSSNILLDASFNAKLSDFGLAVKSAGCAGNTNIDLVGTLGYVAPEYMLDGKLTEKSDVYAYGVVLLELLFGRKPIDKSLPSECQSLISWAMPQLTDREKLPTIIDPMIKGAMNLKHLYQVAAVAVLCVQPEPSYRPLIADVVHSLIPLVPVELGGTLKSSPTEMKSFASSQCSAHVAS
>SEQIDNO:67
ATGTTCTTGTTTCCTAAAACAGTTCCTATTTGGTTTTTTCATCTGTGTCTAGTAGCAGTTCATGCCATACAAGAAGACCCACCTGTCCCTTCACCATCTCCCTCTCTCATTTCTCCTATTTCAACTTCAATGGCTGCCTTCTCTCCAGGGGTTGAATCGGAAATGGGAATCAAAGACCACCCCCAGCATGATGACCTCCACAGGAAAATAATCTTGTTGCTCACTGTTGCTTGTTGCATACTTGTTATCATCCTTCTTTCTTTGTGTTCTTGTTTCATTTACTATAAGAAGTCCTCACAAAAGAAAAAAGCTACTCGGTGTTCAGATGTGGAGAAAGGGCTTTCATTGGCACCATTTTTGGGCAAATTCAGTTCCTTGAAAATGGTTAGTAATAGGGGATCTGTTTCATTAATTGAGTATAAGATACTAGAGAAAGGAACAAACAATTTTGGCGATGATAAATTGTTGGGAAAGGGAGGATTTGGACGTGTATATAAGGCTGTAATGGAAGATGACTCAAGTGCTGCAGTCAAGAAACTAGACTGCGCAACTGATGATGCGCAGAGAGAATTTGAGAATGAGGTGGATTTGTTAAGCAAATTTCACCATCCAAATATAATTTCTATTGTGGGTTTTAGTGTTCATGAGGAGATGGGGTTCATTATTTATGAGTTAATGCCAAATGGGTGCCTTGAAGATCTACTGCATGGACCTTCTCGTGGATCTTCACTAAATTGGCATTTAAGGTTGAAAATTGCTCTTGATACAGCAAGAGGATTAGAATATCTGCATGAATTCTGCAAGCCAGCAGTGATCCATAGAGATCTGAAATCATCGAATATTCTTTTGGACGCCAACTTCAATGCCAAGCTGTCAGATTTTGGTCTTGCTGTAGCTGATAGCTCTCATAACAAGAAAAAGCTCAAGCTTTCAGGCACTGTGGGTTATGTAGCCCCAGAGTATATGTTAGATGGTGAATTGACGGATAAGAGTGATGTCTATGCTTTTGGAGTTGTGCTTCTAGAGCTTCTATTAGGAAGAAGGCCTGTAGAAAAACTGACACCAGCTCATTGCCAATCTATAGTAACATGGGCCATGCCTCAGCTCACTAACAGAGCTGTGCTTCCAACCCTTGTGGATCCTGTGATCAGAGATTCAGTAGATGAGAAGTACTTGTTCCAGGTTGCAGCAGTAGCCGTGTTGTGTATTCAACCAGAGCCAAGTTACCGCCCTCTCATAACAGATGTTGTGCACTCTCTCGTCCCATTAGTTCCTCTTGAGCTTGGAGGGACACTAAGAGTTCCACAGCCTACAACTCCCAGAGGTCAACGACAAGGCCCATCAAAGAAACTGTTTTTGGATGGTGCTGCCTCTGCT
>SEQIDNO:68
MFLFPKTVPIWFFHLCLVAVHAIQEDPPVPSPSPSLISPISTSMAAFSPGVESEMGIKDHPQHDDLHRKIILLLTVACCILVIILLSLCSCFIYYKKSSQKKKATRCSDVEKGLSLAPFLGKFSSLKMVSNRGSVSLIEYKILEKGTNNFGDDKLLGKGGFGRVYKAVMEDDSSAAVKKLDCATDDAQREFENEVDLLSKFHHPNIISIVGFSVHEEMGFIIYELMPNGCLEDLLHGPSRGSSLNWHLRLKIALDTARGLEYLHEFCKPAVIHRDLKSSNILLDANFNAKLSDFGLAVADSSLNKKKLKLSGTVGYVAPEYMLDGELTDKSDVYAFGVVLLELLLGRRPVEKLTPAHCQSIVTWAMPQLTNRAVLPTLVDPVIRDSVDEKYLFQVAAVAVLCIQPEPSYRPLITDVVHSLVPLVPLELGGTLRVPQPTTPRGQRQGPSKKLFLDGAASA
>SEQIDNO:69
GCTGCTGCGGTGAAGAGATTGGATGGTGGGGCTGGGGCACATGATTGCGAGAAGGAATTCGAGAATGAGTTAGATTTGCTTGGAAAGATTCGGCATCCGAACATTGTGTCCCTTGTGGGCTTCTGTATTCATGAGGAGAACCGTTTCATTGTTTATGAGCTGATAGAGAATGGGTCGTTGGATTCACAACTTCATGGGCCATCACATGGTTCAGCTCTGAGCTGGCATATTCGGATGAAGATTGCTCTTGACACGGCAAGGGGATTAGAGTACCTGCATGAGCACTGCAACCCACCAGTTATCCATAGGGATCTGAAGTCATCTAACATACTTTTAGATTCAGACTTCAGTGCTAAGATTTCAGATTTTGGCCTTGCGGTGATTAGTGGGAATCACAGCAAAGGGAATTTAAAGCTTTCTGGGACTATGGGCTATGTGGCCCCTGAGTACTTATTGGATGGGAAGTTGACTGAGAAGAGCGATGTATATGCGTTTGGGGTGGTACTTCTAGAACTTCTACTGGGAAGGAAACCTGTTGAGAAGATGGCACAATCTCAATGCCAATCAATTGTTACATGGGCCATGCCTCAGCTAACTGATAGATCCAAACTCCCTAACATAATTGATCCCATGATCAAGAACACAATGGATCTGAAACACTTGTACCAAGTTGCTGCAATGGCTGTGCTCTGA
>SEQIDNO:70
AAAVKRLDGGAGAHDCEKEFENELDLLGKIRHPNIVSLVGFCIHEENRFIVYELIENGSLDSQLHGPSHGSALSWHIRMKIALDTARGLEYLHEHCNPPVIHRDLKSSNILLDSDFSAKISDFGLAVISGNHSKGNLKLSGTMGYVAPEYLLDGKLTEKSDVYAFGVVLLELLLGRKPVEKMAQSQCQSIVTWAMPQLTDRSKLPNIIDPMIKNTMDLKHLYQVAAMAVL
>SEQIDNO:71
ACCCTCGGTTATGTAGCTCCTGAGTATCTGTTAGATGGTAAGTTAACAGAGAAAAGCGATGTGTATGGGTTTGGAGTAGTGTTACTCGAGCTTCTGCTTGGGAAGAAGCCTATGGAGAAAGTGGCAACAACAGCAACTCAGTGCCAGATGATAGTCACATGGACCATGCCTCAGCTCACTGACAGAACGAAACTTCCGAATATCGTGGATCCGGTGATCAGAAACTCCATGGATTTAAAGCACTTGTACCAGGTTGCTGCTGTGGCAGTATTGTGTGTGCAGCCAGAACCGAGTTATCGGCCATTGATAACTGATATTTTGCATTCTCTTGTGCCCCTTGTCCCTGTTGAGCTTGGTGGGACGCTCAGGAACTCGATAACAATGGCTACAACAACAATATCTCCTGAAAGCTAA
>SEQIDNO:72
TLGYVAPEYLLDGKLTEKSDVYGFGVVLLELLLGKKPMEKVATTATQCQMIVTWTMPQLTDRTKLPNIVDPVIRNSMDLKHLYQVAAVAVLCVQPEPSYRPLITDILHSLVPLVPVELGGTLRNSITMATTTISPES
>SEQIDNO:73
CGGCACGAGGGGCTGGTGGCCATGATCGAGTACCCGTCGCTGGAGGCGGCGACGGGCAAGTTCAGCGAGAGCAACGTGCTCGGCGTCGGCGGGTTCGGCTGCGTCTACAAGGCGGCGTTCGACGGCGGCGCCACCGCCGCCGTGAAGAGGCTCGAAGGCGGCGAGCCGGACTGCGAGAAGGAGTTCGAGAATGAGCTGGACTTGCTTGGCAGGATCAGGCACCCAAACATAGTGTCCCTCCTGGGCTTCTGCGTCCATGGTGGCAATCACTACATTGTTTATGAGCTCATGGAGAAGGGATCATTGGAGACACAACTGCATGGGCCTTCACATGGATCGGCTATGAGCTGGCACGTCCGGATGAAGATCGCGCTCGACACGGCGAGGGGATTAGAGTATCTTCATGAGCACTGCAATCCACCAGTCATCCATAGGGATCTGAAATCGTCTAATATACTCTTGGATTCAGACTTCAATGCTAAGATTGCAGATTTTGGCCTTGCAGTGACAAGTGGGAATCTTGACAAAGGGAACCTGAAGATCTCTGGGACCTTGGGATATGTAGCTCCCGAGTACTTATTAGATGGGAAGTTGACCGAGAAGAGCGACGTCTACGCGTTTGGAGTAGTGCTTCTAGAGCTCCTGATGGGGAGGAAGCCTGTTGAGAAGATGTCACCATCTCAGTGCCAATCAATTGTGTCATGGGCCATGCCTCAGCTAACCGACAGATCGAAGCTACCCAACATCATCGACCCGGTGATCAAGGACACAATGGACCCAAAGCATTTATACCAAGTTGCGGCGGTGGCCGTTCTATGCGTGCAGCCCGAACCGAGTTACAGACCGCTGATAACAGACGTTCTCCACTCCCTTGTTCCTCTGGTACCCGCGGATCTCGGGGGGAACGCTCAGAGTTACAGAGCCGCATTCTCCACACCAAATGTACCATCCCTCTTGAGAAGTGATCCTACAAGTTTCGTCGAAGCGGGGAAAGCGAATNTATACGGTCCAGCGGTAGATGGCTGTTATTTTGGTACTTATATCTCACCCTGTCCTGCTGCTTATCTTAGGATGAGTGANGAGCTCCNACCTGCTGCTTTTGCTGGTTGGGCAGAGAGAATACAGTTCTGGTTAGGATTG
>SEQIDNO:74
RHEGLVAMIEYPSLEAATGKFSESNVLGVGGFGCVYKAAFDGGATAAVKRLEGGEPDCEKEFENELDLLGRIRHPNIVSLLGFCVHGGNHYIVYELMEKGSLETQLHGPSHGSAMSWHVRMKIALDTARGLEYLHEHCNPPVIHRDLKSSNILLDSDFNAKIADFGLAVTSGNLDKGNLKISGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLMGRKPVEKMSPSQCQSIVSWAMPQLTDRSKLPNIIDPVIKDTMDPKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPADLGGNAQSYRAAFSTPNVPSLLRSDPTSFVEAGKANXYGPAVDGCYFGTYISPCPAAYLRMSXELXPAAFAGWAERIQFWLGL
>SEQIDNO:75
ATGAAAGTGATTGGGAGAAAGGGTTATGTCTCTTTTATTGATTATAAGGTACTAGAAACTGCAACAAACAATTTTCAGGAAAGTAATATCCTGGGTGAGGGCGGGTTTGGTTGCGTCTACAAGGCGCGGTTGGATGATAACTCCCATGTGGCTGTGAAGAAGATAGATGGTAGAGGCCAGGATGCTGAGAGAGAATTTGAGAATGAGGTGGATTTGTTGACTAAAATTCAGCACCCAAATATAATTTCTCTCCTGGGTTACAGCAGTCATGAGGAGTCAAAGTTTCTTGTCTATGAGCTGATGCAGAATGGATCTCTGGAAACTGAATTGCACG6ACCTTCTCATGGATCATCTCTAACTTGGCATATTCGAATGAAAATCGCTCTGGATGCAGCAAGAGGATTAGAGTATCTACATGAGCACTGCAACCCACCAGTCATCCATAGAGATCTTAAATCATCTAATATTCTTCTGGATTCAAACTTCAATGCCAAGCTTTCGGATTTTGGTCTAGCTGTAATTGATGGGCCTCAAAACAAGAACAACTTGAAGCTTTCAGGCACCCTGGGTTATCTAGCTCCTGAGTATCTTTTAGATGGTAAACTGACTGATAAGAGTGATGTGTATGCATTTGGAGTGGTGCTTCTAGAGCTACTACTGGGAAGAAAGCCTGTGGAAAAACTGGCACCAGCTCAATGCCAGTCCATTGTCACATGGGCCATGCCACAGCTGACTGACAGATCAAAGCTCCCAGGCATCGTTGACCCTGTGGTCAGAGACACGATGGATCTAAAGCATTTATACCAAGTTGCTGCTGTAGCTGTGCTATGTGTGCAACCAGAACCAAGTTACCGGCCATTGATAACAGATGTTCTGCACTCCCTCATCCCACTCGTTCCAGTTGAGTTGGGAGGGATGCTAAAAGTTACCCAGCAAGCGCCGCCTATCAACACCACTGCACCTTCTGCTGGAGGTTGA
>SEQIDNO:76
MKVIGRKGYVSFIDYKVLETATNNFQESNILGEGGFGCVYKARLDDNSHVAVKKIDGRGQDAEREFENEVDLLTKIQHPNIISLLGYSSHEESKFLVYELMQNGSLETELHGPSHGSSLTWHIRMKIALDAARGLEYLHEHCNPPVIHRDLKSSNILLDSNFNAKLSDFGLAVIDGPQNKNNLKLSGTLGYLAPEYLLDGKLTDKSDVYAFGVVLLELLLGRKPVEKLAPAQCQSIVTWAMPQLTDRSKLPGIVDPVVRDTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLIPLVPVELGGMLKVTQQAPPINTTAPSAGG
>SEQIDNO:77
ATGCCGCCGCCATCGCCGCTCCTCCGTTCCTCCGCCTTCGTCGTCTTGCTGCTCCTGGTGTGTCGCCCGTTGTTGGTCGCCAATGGGAGGGCCACGCCGCCTTCTCCGGGATGGCCACCGGCGGCTCAGCCCGCGCTGCAGCCTGCACCCACCGCCAGCGGCGGCGTGGCCTCCGTGCTTCCTTCGGCCGTGGCGCCTCCTCCCTTAGGTGTGGTTGTGGCGGAGAGGCACCACCACCTCAGCAGGGAGCTCGTCGCTGCCATTATCCTCTCATCCGTCGCCAGCGTCGTGATCCCCATTGCCGCGCTGTATGCCTTCTTGCTGTGGCGACGATCACGGCGAGCCCTGGTGGATTCCAAGGACACCCAGAGCATAGATACCGCAAGGATTGCTTTTGCGCCGATGTTGAACAGCTTTGGCTCGTACAAGACTACCAAGAAGAGTGCCGCGGCGATGATGGATTACACATCTTTGGAGGCAGCGACAGAAAACTTCAGTGAGAGCAATGTCCTTGGATTTGGTGGGTTTGGGTCTGTGTACAAAGCCAATTTTGATGGGAGGTTTGCTGCTGCGGTGAAGAGACTGGATGGTGGGGCACATGATTGCAAGAAGGAATTCGAGAATGAGCTAGACTTGCTTGGGAAGATTCGACATCCGAACATCGTGTCCCTTGTGGGCTTCTGCATTCATGAGGAGAACCGTTTCGTTGTTTATGAGCTGATGGAGAGTGGGTCGTTGGATTCGCAACTTCATGGGCCATCACATGGTTCAGCTCTGAGCTGGCATATTCGGATGAAGATTGCTCTCGACACAGCAAGGGGATTAGAGTACCTGCATGAGCACTGCAACCCACCGGTTATCCATAGGGATCTTAAGTCATCTAACATACTTTTAGATTCAGACTTCAGCGCTAAGATTTCAGACTTTGGCCTGGCAGTGACTAGTGGGAATCACAGCAAAGGGAATTTAAAGCTTTCTGGGACTATGGGCTATGTGGCTCCTGAGTACTTATTAGATGGGAAGCTGACTGAGAAGAGCGATGTATACGCGTTTGGGGTAGTACTTCTAGAACTCCTGCTGGGAAGGAAACCTGTCGAGAAGATGGCACAATCTCAGTGCCGATCAATCGTTACATGGGCCATGCCTCAGCTAACTGATAGATCCAAGCTCCCGAACATAATTGATCCCATGATCAAGAACACAATGGATCTGAAACACTTGTACCAAGTTGCTGCAGTGGCCGTGCTCTGCGTGCAGCCAGAGCCGAGTTACAGGCCACTGATCACCGACGTGCTTCACTCACTGGTACCTCTAGTGCCCACGGAGCTTGGAGGAACGCTGAGGATCGGCCCGGAATCGCCCTACCTACGCTACTAA
>SEQIDNO:78
MPPPSPLLRSSAFVVLLLLVCRPLLVANGRATPPSPGWPPAAQPALQPAPTASGGVASVLPSAVAPPPLGVVVAERHHHLSRELVAAIILSSVASVVIPIAALYAFLLWRRSRRALVDSKDTQSIDTARIAFAPMLNSFGSYKTTKKSAAAMMDYTSLEAATENFSESNVLGFGGFGSVYKANFDGRFAAAVKRLDGGAHDCKKEFENELDLLGKIRHPNIVSLVGFCIHEENRFVVYELMESGSLDSQLHGPSHGSALSWHIRMKIALDTARGLEYLHEHCNPPVIHRDLKSSNILLDSDFSAKISDFGLAVTSGNHSKGNLKLSGTMGYVAPEYLLDGKLTEKSDVYAFGVVLLELLLGRKPVEKMAQSQCRSIVTWAMPQLTDRSKLPNIIDPMIKNTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPTELGGTLRIGPESPYLRY
>SEQIDNO:79
ATGTTGCTCGCGTGTCCTGCAGTGATCATCGTGGAGCGCCACCGTCATTTCCACCGTGAGCTAGTCATCGCCTCCATCCTCGCCTCAATCGCCATGGTCGCGATTATCCTCTCCACGCTGTACGCGTGGATCCCGCGCAGGCGGTCCCGCCGGCTGCCCCGCGGCATGAGCGCAGACACCGCGAGGGGGATCATGCTGGCGCCGATCCTGAGCAAGTTCAACTCGCTCAAGACGAGCAGGAAGGGGCTCGTGGCGATGATCGAGTACCCGTCGCTGGAGGCAGCGACAGGGGGGTTCAGTGAGAGCAACGTGCTCGGCGTAGGCGGCTTCGGTTGCGTCTACAAGGCAGTCTTCGATGGCGGCGTTACCGCGGCGGTCAAGAGGCTGGAGGGAGGTGGCCCTGAGTGCGAGAAGGAATTCGAGAATGAGCTGGATCTGCTTGGCAGGATTCGGCACCCCAACATCGTGTCCCTGCTGGGCTTTTGTGTTCACGAGGGGAATCACTACATTGTTTATGAGCTCATGGAGAAGGGATCCCTGGACACACAGCTGCATGGGGCCTCACATGGATCAGCGCTGACCTGGCATATCCGGATGAAGATCGCACTCGACATGGCCAGGGGATTAGAATACCTCCATGAGCACTGCAGTCCACCAGTGATCCATAGGGATCTGAAGTCATCTAACATACTTTTAGATTCTGACTTCAATGCTAAGATTTCAGATTTTGGTCTTGCAGTGACCAGTGGGAACATTGACAAGGGAAGCATGAAGCTTTCTGGGACCTTGGGTTATGTGGCCCCTGAGTACCTATTAGATGGGAAGCTGACTGAAAAGAGTGACGTATATGCATTTGGAGTGGTGCTTCTTGAGCTACTAATGGGAAGGAAGCCTGTCGAGAAGATGAGTCAAACTCAGTGCCAATCAATTGTGACGTGGGCCATGCCGCAGCTGACTGACAGAACAAAACTTCCCAACATAGTTGACCCAGTGATCAGGGACACCATGGATCCAAAGCATTTGTACCAAGTGGCAGCAGTGGCAGTTCTATGTGTGCAACCAGAACCAAGTTACAGACCGCTGATTACTGATGTTCTCCACTCTCTTGTCCCTCTAGTCCCTGTGGAGCTCGGAGGGACACTGAGGGTTGTAGAGCCACCTTCCCCAAACCTAAAACATTCTCCTTGT
>SEQIDNO:80
MLLACPAVIIVERHRHFHRELVIASILASIAMVAIILSTLYAWIPRRRSRRLPRGMSADTARGIMLAPILSKFNSLKTSRKGLVAMIEYPSLEAATGGFSESNVLGVGGFGCVYKAVFDGGVTAAVKRLEGGGPECEKEFENELDLLGRIRHPNIVSLLGFCVHEGNHYIVYELMEKGSLDTQLHGASHGSALTWHIRMKIALDMARGLEYLHEHCSPPVIHRDLKSSNILLDSDFNAKISDFGLAVTSGNIDKGSMKLSGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLMGRKPVEKMSQTQCQSIVTWAMPQLTDRTKLPNIVDPVIRDTMDPKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRVVEPPSPNLKHSPC
>SEQIDNO:81
ATGAAGAAGAAGCTTGTGCTGCATCTGCTTCTTTTCCTTGTTTGTGCTCTTGAAAACATTGTTTTGGCCGTACAAGGCCCTGCTTCATCACCCATTTCTACTCCCATCTCTGCTTCAATGGCTGCCTTCTCTCCAGCTGGGATTCAACTTGGAGGTGAGGAGCACAAGAAAATGGATCCAACCAAGAAAATGTTATTAGCTCTCATTCTTGCTTGCTCTTCATTGGGTGCAATTATCTCTTCCTTGTTCTGTTTATGGATTTATTACAGGAAGAATTCAAGCAAATCCTCTAAAAATGGCGCTAAGAGCTCAGATGGTGAAAAAGGGAATGGTTTGGCACCATATTTGGGTAAATTCAAGTCTATGAGGACGGTTTCCAAAGAGGGTTATGCTTCGTTTATGGACTATAAGATACTTGAAAAAGCTACAAACAAGTTCCATCATGGTAACATTCTGGGTGAGGGTGGATTTGGATGTGTTTACAAGGCTCAATTCAATGATGGTTCTTATGCTGCTGTTAAGAAGTTGGACTGTGCAAGCCAAGATGCTGAAAAAGAATATGAGAATGAGGTGGGTTTGCTATGTAGATTTAAGCATTCCAATATAATTTCACTGTTGGGTTATAGCAGTGATAACGATACAAGGTTTATTGTTTATGAGTTGATGGAAAATGGTTCTTTGGAAACTCAATTACATGGACCTTCTCATGGTTCATCATTAACTTGGCATAGGAGGATGAAAATTGCTTTGGATACAGCAAGAGGATTAGAATATCTACATGAGCATTGCAATCCACCAGTCATCCATAGAGATCTGAAATCATCTAATATACTTTTGGATTTGGACTTCAATGCAAAGCTTTCAGATTTTGGTCTTGCAGTAACTGATGCGGCAACAAACAAGAATAACTTGAAGCTTTCGGGTACTTTAGGTTATCTAGCTCCAGAATACCTTTTAGATGGTAAATTAACAGATAAGAGTGATGTTTATGCATTCGGTGTTGTGCTGCTCGAACTTCTATTGGGACGAAAGGCTGTTGAAAAATTATCACAACTCAGTGCCAATCTTAGGTCCATTTGGGCATAG
>SEQIDNO:82
MKKKLVLHLLLFLVCALENIVLAVQGPASSPISTPISASMAAFSPAGIQLGGEEHKKMDPTKKMLLALILACSSLGAIISSLFCLWIYYRKNSSKSSKNGAKSSDGEKGNGLAPYLGKFKSMRTVSKEGYASFMDYKILEKATNKFHHGNILGEGGFGCVYKAQFNDGSYAAVKKLDCASQDAEKEYENEVGLLCRFKHSNIISLLGYSSDNDTRFIVYELMENGSLETQLHGPSHGSSLTWHRRMKIALDTARGLEYLHEHCNPPVIHRDLKSSNILLDLDFNAKLSDFGLAVTDAATNKNNLKLSGTLGYLAPEYLLDGKLTDKSDVYAFGVVLLELLLGRKAVEKLSQLSANLRSIWA
>SEQIDNO:83
GGAGTGGGAATTGAGAAGCAGCCACCCACCCACCCACCCTATGGATAAAAATAGAAGGCTGTTGATAGCACTCATTGTAGCTTCTACTGCATTAGGACTAATCTTTATCTTCATCATTTTATTCTGGATTTTTCACAAAAGATTTCACACCTCAGATGTTGTGAAGGGAATGAGTAGGAAAACATTGGTTTCTTTAATGGACTACAACATACTTGAATCAGCCACCAACAAATTTAAAGAAACTGAGATTTTAGGTGAGGGGGGTTTTGGATGTGTGTACAAAGCTAAATTGGAAGACAATTTTTATGTAGCTGTCAAGAAACTAACCCAAAATTCCATTAAAGAATTTGAGACTGAGTTAGAGTTGTTGAGTCAAATGCAACATCCCAATATTATTTCATTGTTGGGATATTGCATCCACAGTGAAACAAGATTGCTTGTCTATGAACTCATGCAAAATGGATCACTAGAAACTCAATTACATGGGCCTTCCCGTGGATCAGCATTAACTTGGCATCGCAGGATAAAAATTGCCCTTGATGCAGCAAGAGGAATAGAATATTTACATGAGCAGCGCCATCCCCCTGTAATTCATAGAGATCTGAAATCATCTAATATTCTTTTAGATTCCAACTTCAATGCAAAGGTAAAACTTTTTATGTAGAAATTATACTAGGACTAGTTTTCCCTCTATTAATCTTGTGTTGTGATTAATTTTAGCTGTCAGATTTTGGTCTTGCTGTGTTGAGTGGGGCTCAAAACAAAAACAATATCAAGCTTTCTGGAACTATAGGTTATGTAGCGCCTGAATACATGTTAGATGGAAAATTAAGTGATAAAAGTGATGTTTATGGTTTTGGAGTAGTACTTTTGGAGCTGTTATTGGGAAGGCGGCCTGTAGAAAAGGAGGCAGCCACTGAATGTCAGTCTATAGTGACATGGGCCATGCCTCAGCTGACAGATAGATCAAAGCTTCCAAACATTGTTGATCCTGTCATACAAAACACAATGGATTTAAAGCATNTGTATCAGGTTGCTGCAGGTGCTCTATTATGTGTTCAGCCAGAGCCAAGCTATCGTCCCGTATAA
>SEQIDNO:84
GAGTATCAGTTATTGGAAGCTGCAACTGACAATTTTAGTGAGAGTAATATTTTGGGAGAAGGTGGATTTGGATGTGTTTACAAAGCATGTTTTGATAACAACTTTCTCGCTGCTGTCAAGAGAATGGATGTTGGTGGGCAAGATGCAGAAAGAGAATTTGAGAAAGAAGTAGATTTGTTGAATAGAATTCAGCATCCGGATATAATTTCCCTGTTGGGTTATTGTATTCATGATGAGACAAGGTTCATCATTTATGAACTAATGCAGAACGGATCTTTGGAAAGACAATTACATGGACCTTCTCATGGATCGGCTTTAACTTGGCATATCCGGATGAAAATTGCACTTGATACAGCAAGAGCATTAGAATATCTCCATGAGAATTGCAACCCTCCTGTGATCCACAGAGATCTGAAATCATCCAATATACTTTTGGATTCTAATTTCAAGGCCAAGATTTCAGATTTTGGTCTTGCTGTAATTTCTGGGAGTCAAAACAAGAACAACATTAAGCTTTCAGGCACTCTTGGTTATGTTGCTCCAGAATATCTGTTAGATGGTAAATTGACTGACAAAAGTGATGTCTATGCTTTTGGGGTTATCCTTCTAGAACTCCTAATGGGAAGAAAACCTGTAGAGAAAATGACACGAACTCAGTGTCAATCTATCGTTACATGGGCCATGCCTCAACTCACTGATAGATCAAAGCTACCAAACATTGTTGATCCTGTGATTAAAAACACAATGGATTTGAAGCATTTGTTCCAAGTTGCTGCTGTAGCTGTACTGTGTGTACAACCAGAACCAAGTTACCGGCCATTAATCACAGATGTCCTTCACTCCCTCGTACCCCTTGTTCCTGTCGATCTTGGAGG
>SEQIDNO:85
EYQLLEAATDNFSESNILGEGGFGCVYKACFDNNFLAAVKRMDVGGQDAEREFEKEVDLLNRIQHPDIISLLGYCIHDETRFIIYELMQNGSLERQLHGPSHGSALTWHIRMKIALDTARALEYLHENCNPPVIHRDLKSSNILLDSNFKAKISDFGLAVISGSQNKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVILLELLMGRKPVEKMTRTQCQSIVTWAMPQLTDRSKLPNIVDPVIKNTMDLKHLFQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPVDLGG
>SEQIDNO:86
TGTGCTCATGATGAGACCAAACTACTTGTTTACGAACTTATGCACAATGGTTCGTTAGAAACTCAATTACACGGTCCTTCTTGTGGATCCAATTTAACATGGCATTGTCGGATGAAAATTGCGCTAGATATAGCGAGAGGATTGGAATATTTACATGAACACTGCAAACCATCTGTGATTCATAGAGATTTGAAGTCATCTAACATCCTTTTGGATTCAAAATTCAATGCCAAGCTTTCGGATTTCGGTCTTGCTGTGATGAACGGTGCCAATACCAAAAACATTAAGCTTTCGGGGACGTTGGGTTACGTAGCTCCCGAGTATCTTTTAAATGGGAAATTGACCGATAAAAGTGACGTCTACGCATTCGGAGTTGTACTTTTAGAGCTTCTACTCAAAAGGCGGCCTGTCGAAAAACTAGCACCATCCGAGTGCCAGTCCATCGTCACTTGGGCTATGCCGCAACTAACAGACAGAACAAAGCTTCCGAGTGTTATAGATCCCGTGATCAGGGACACGATGGATCTTAAACACTTGTATCAAGTGGCGGCTGTGGCTGTGTTGTGTGTTCAACCGGAACCGGGATACCGGCCGTTGATAACCGACGTCTTGCATTCTCTGGTTCCTCTCGTGCCGGTTGAACTCGGAGGGACTCTACGAGTTGCGGAAACAGGTTGCGGCACAGTTGACTTATGA
>SEQIDNO:87
CAHDETKLLVYELMHNGSLETQLHGPSCGSNLTWHCRMKIALDIARGLEYLHEHCKPSVIHRDLKSSNILLDSKFNAKLSDFGLAVMNGANTKNIKLSGTLGYVAPEYLLNGKLTDKSDVYAFGVVLLELLLKRRPVEKLAPSECQSIVTWAMPQLTDRTKLPSVIDPVIRDTMDLKHLYQVAAVAVLCVQPEPGYRPLITDVLHSLVPLVPVELGGTLRVAETGCGTVDL
>SEQIDNO:88
TGGATTTGGATGCGTTTAAAAGCTCAACTCAATGATAACTTATTAGTTGCGGTCAAACGACTAGACAATAAAAGTCAAAATTCCATCAAAGAATTCCAGACGGAAGTGAATATTTTGAGTAAAATTCAACATCCAAATATAATTAGTTTGTTGGGATATTGCGATCATGATGAAAGCAAGCTACTTGTTTACGAATTGATGCAAAATGGTTCTTTAGAAACTCAGTTACATGGGCCTTCTTGTGGATCCAATTTAACATGGTATTGCCGGATGAAAATTGCCCTAGATATAGCAAGAGGATTGGAATATTTACATGAACACTCCAAACCATCTGTGATTCATAGAGATCTCAAATCATCTAATATACTTCTTGATTCAAATTTCAATGCAAAGCTTTCGGATTTTGGTCTTGCGGTGATGGAAGGTGCAAATAGCAAAAACATTAAACTTTCGGGGACATTGGGATACGTAGCACCCGAATATCTTTTAGATGGGAAATTAACCGATAAAAGTGACGTGTATGCATTTGGAGTCGTACTTTTTGAGCTTTTACTCAGAAGACGACACGTTGAAAAACTAGAATCATCACAATCCCGCCAATCTATTGTCACTTGGGCGATGCCACTACTAATGGACAGATCGAAGCTTCCGAGTGTGATAGATCCTGTGATTAGGGATACAATGGATCTTAAACATCTTTATCAAGTGGCTGCGGTGGCGGTGTTGTGTGTTCAATCGGAACCGAGTTACCGTCCGTTGATAACCGATGTTTTACATTCTCTTGTTCCTCTTGTCCCGGTTGAACTTGGAGGGACACTTAGAGTTGTAGAAAAGAGTGTTGT
>SEQIDNO89
WIWMRLKAQLNDNLLVAVKRLDNKSQNSIKEFQTEVNILSKIQHPNIISLLGYCDHDESKLLVYELMQNGSLETQLHGPSCGSNLTWYCRMKIALDIARGLEYLHEHSKPSVIHRDLKSSNILLDSNFNAKLSDFGLAVMEGANSKNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLFELLLRRRHVEKLESSQSRQSIVTWAMPLLMDRSKLPSVIDPVIRDTMDLKHLYQVAAVAVLCVQSEPSYRPLITDVLHSLVPLVPVELGGTLRVVEKSVV
>SEQIDNO:90
ATTCTTTTAGATGCAAACTTCAATGCCAAGCTTTCTGATTTTGGCTTGTCTGTCATTGTTGGAGCACAAAACAAGAATGATATAAAGCTTTCCGGAACGATGGGTTATGTTGCTCCTGAATATCTTTTAGATGGTAAATTGACTGATAAAAGTGATGTCTATGCTTTTGGAGTTGTGCTTTTGGAGCTTCTTTTAGGAAGAAGGCCTGTTGAAAAACTGGCACCATCTCAATGTCAATCCATTGTCACATGGGCTATGCCTCAACTCACTGATAGATCAAAGTTACCCGATATCGTTGATCCGGTGATCAGACACACAATGGACCCTAAACATTTATTTCAGGTTGCTGCTGTCGCCGTGCTGTGTGTGCAACCAGAACCGAGCTATCGTCCCCTAATAACAGATCTTTTGCACTCTCTTATTCCTCTTGTTCCTGTTGAGCTAGGAGGTACTCACAGATCATCAACATCACAAGCTCCTGTGGCTCCAGCTTAG
>SEQIDNO:91
ILLDANFNAKLSDFGLSVIVGAQNKNDIKLSGTMGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLAPSQCQSIVTWAMPQLTDRSKLPDIVDPVIRHTMDPKHLFQVAAVAVLCVQPEPSYRPLITDLLHSLIPLVPVELGGTHRSSTSQAPVAPA
>SEQIDNO:92
GATGGGAAGCTCACCGAGAAAAGCGACGTGTACGCGTTTGGCATAGTGCTTCTTGAGCTGCTAATGGGAAGGAAGCCTGTTGAGAAGTTGAGTCAATCTCAGTGCCAATCAATTGTGACTTGGGCCATGCCCCAACTGACAGACAGATCAAAACTTCCCAACATAATTGACCCAGTGATCAGGGACACAATGGATCCAAAGCACTTGTATCAGGTTGCAGCAGTGGCTGTTCTATGCGTGCAACCAGAACCGAGTTACAGACCACTGATAACGGATGTTCTCCACTCTTTAGTTCCTCTAGTGCCTGTGGAGCTTGGTGGGACACTAAGGGTTGCAGAGCCACCGTCCCCAAACCAAAATCATTCTCCTCGTTGA
>SEQIDNO:93
DGKLTEKSDVYAFGIVLLELLMGRKPVEKLSQSQCQSIVTWAMPQLTDRSKLPNIIDPVIRDTMDPKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRVAEPPSPNQNHSPR
>SEQIDNO:94
GGGGTTCATGGCAAGAACAATATAAAACTTTCAGGAACTTTAGGATATGTCGCGCCGGAATACCTTTTAGATGGTAAACTTACTGATAAAAGTGACGTTTATGCGTTTGGAGTTGTGCTTCTCGAGCTTTTGATAGGACGAAAACCCGTGGAGAAAATGTCACCATTTCAATGCCAATTTATCGTTACATGGGCAATGCCTCAGCTAACGGACAGATCGAAGCTTCCTAATCTTGTGGATCCTGTGATTAGAGATACTATGGACTTGAAGCCCTTATATCAAGTTGCGGCTGTAACTGTGTTATGTGTACAACCCGAACCAAGTTACCGCCCATTAATAACGGATGTTTTGCATTCGTTCATCCCACTTGTACCTGCTGATCTTGGAGGGTCGTTAAAAGTTGTCGACTTTTAA
>SEQIDNO:95
GVHGKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLIGRKPVEKMSPFQCQFIVTWAMPQLTDRSKLPNLVDPVIRDTMDLKPLYQVAAVTVLCVQPEPSYRPLITDVLHSFIPLVPADLGGSLKVVDF
>SEQIDNO:96
ATCGTGTTCCATTTTGGTTGTTGTCTAAAGCTTTCAGATTTTGGTCTTGCTGTAATGGATGGAGCCCAGAACAAAAACAACATCAAGCTTTCAGGGACATTGGGTTATGTAGCTCCAGAGTATCTTTTAGATGGAAAACTGACCGACAAAAGTGATGTATATGCATTTGGAGTTGTACTTTTAGAGCTTCTACTTGGAAGACGGCCTGTAGAAAAACTGGCCGCATCTCAATGCCAATCTATCGTCACTTGGGCCATGCCACAGCTAACAGACAGATCAAAGCTCCCAAATATTGTCGATCCTGTAATCAGATATACGATGGATCTCAAACACTTGTACCAAGTTGCTGCCGTGGCAGTGCTGTGTGTGCAACCAGAGCCAAGTTACCGGCCATTAATAACCGATGTTTTGCATTCTCTTATCCCTCTTGTTCCGGTGGAGCTCGGGGGAACTCTAAAAGCTCCACAAACAAGGTCTTCGGTAACAAATGACCCGTGA
>SEQIDNO:97
IVFHFGCCLKLSDFGLAVMDGAQNKNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLAASQCQSIVTWAMPQLTDRSKLPNIVDPVIRYTMDLKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLIPLVPVELGGTLKAPQTRSSVTNDP
>SEQIDNO:98
CGTGGATCAACTTTAAGTTGGCCTCTCCGAATGAAAATTGCTTTGGATATTGCAAGAGGATTAGAATACCTTCACGAGCGTTGCAACCCCCCTGTGATCCATAGGCATCTCAAATCGTCTAATATTCTTCTTGATTCCAGCTTCAACGCAAAGATTTCTGATTTTGGCCTTTCTGTAACTGGCGGAAACCTAAGCAAGAACATAACCAAGATTTCGGGATCACTGGGTTATCTTGCTCCAGAGTATCTCTTAGACGGTAAACTAACTGATAAGAGTGATGTGTATGGTTTTGGCATTATTCTTCTAGAGCTTTTGATGGGTAAAAGGCCAGTGGAGAAAGTGGGAGAAACTAAGTGCCAATCAATAGTTACATGGGCTATGCCCCAGCTTACGGACCGATCAAAGCTTCCGAATATTGTTGACCCTACGATCAGGAACACAATGGATGTTAAGCATTTATATCAGGTTGCGGCTGTAGCTGTGTTATGTGTGCAACCGGAGCCAAGCTATAGGCCATTGATAACTGATGTACTACACTCCTTCATTCCACTTGTACCAAATGAACTCGGGGGGTCGCTTAGGGTAGTGGATTCTACTCCCCATTGCTCATAG
>SEQIDNO:99
RGSTLSWPLRMKIALDIARGLEYLHERCNPPVIHRHLKSSNILLDSSFNAKISDFGLSVTGGNLSKNITKISGSLGYLAPEYLLDGKLTDKSDVYGFGIILLELLMGKRPVEKVGETKCQSIVTWAMPQLTDRSKLPNIVDPTIRNTMDVKHLYQVAAVAVLCVQPEPSYRPLITDVLHSFIPLVPNELGGSLRVVDSTPHCS
>SEQIDNO:100
TTAGATAATGGCGGACCCGATTGTCAACGAGAATTCGAGAATGAGGTTGATTTGATGAGTAGAATTAGGCATCCAAATGTGHTTTCTTTATTGGHTTATTGCATTCATGGAGAAACCAGGCTTCTTHTCTATGAAATGATGCAAAACGGGACGTTGGAATCGCTATTGCATGGACCATCACATGGATCCTCACTAACTTGGCACATTCGTATGAAGATCGCCCTCGACACAGCAAGAGGCCTCGAGTATCTGCATGAACACTGCGACCCCTCTGTGATCCACCGTGACCTGAAGCCTTCTAACATTCTTTTGGATTCCAACTACAATTCCAAGCTCTCAGACTTTGGTCTTGCAGTCACTGTTGGAAGCCAGAATCAAACCAACATTAAGATTCTAGGGACACTGGGTTACCTTGCACCAGAGTACGTTTTGAATGGCAAATTGACAGAGAAAAGTGATGTGTTTGCTTTTGGAGTTGTCCTGTTGGAGCTTCTCATGGGCAAGAAACCAGTGGAGAAGATGGCATCCCCTCCATGCCAATCCATTGTCACATGGGCGATGCCTCATCTTACTGACAGAATTAAGCTTCCAAATATCATTGATCCTGTTATTAGAAACACCATGGATCTGAAACACTTGTACCAGGTTGCAGCTGTTGCTGTTCTCTGCGTACAACCAGAGCCCCAGTTATCGTCCTCTGATAACTGA
>SEQIDNO:101
LDNGGPDCQREFENEVDLMSRIRHPNVVSLLGYCIHGETRLLVYEMMQNGTLESLLHGPSHGSSLTWHIRMKIALDTARGLEYLHEHCDPSVIHRDLKPSNILLDSNYNSKLSDFGLAVTVGSQNQTNIKILGTLGYLAPEYVLNGKLTEKSDVFAFGVVLLELLMGKKPVEKMASPPCQSIVTWAMPHLTDRIKLPNIIDPVIRNTMDLKHLYQVAAVAVLCVQPEPQLSSSDN
>SEQIDNO:102
TCGGCTCGGCCCAGAACAAGATCGCAAGAC
>SEQIDNO:103
CTACATTCTCTCCTCGTATTATTCCTCGTTGACT
>SEQIDNO:104
ACTTTCAGATGAGTGGATCATAACCCTATACA
>SEQIDNO:105
AGATACAATGGATCTCAAACACTTATACCAG
>SEQIDNO:106
AAAGGATCCATGGGAAGTGGTGAAGAAGATAGATTTGATGCT
>SEQIDNO:107
TTTCTGCAGTCTGTGAATCATCTTGTTAACCGGAGAGTCC
>SEQIDNO:108
TCTGAGTTTTAATCGAGCCAAGTCGTCTCA
>SEQIDNO:109
TATCCCGGGAAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTC
>SEQIDNO:110
TTTGGATCCTGTGAATCATCTTGTTAACCGGAGAGTCC
>SEQIDNO:111
ATACCCGGGTCTGTGTCAGGAATCCAAATGGGAAGTGGTGA
>SEQIDNO:112
AAAGGATCCTCTGTGTCAGGAATCCAAATGGGAAGTGGTGA
>SEQIDNO:113
AAATCTAGACTGTGAATCATCTTGTTAACCGGAGAGTCC
>SEQIDNO:114
ATAGAGCTCGCAAGAACCAATCTCCAAAATCCATC
>SEQIDNO:115
ATAGAGCTCGAGGGTCTTGATATCGAAAAATTGCACG
>SEQIDNO:116
ATAGGATCCTCGCAAGAACCAATCTCCAAAATCCATC
>SEQIDNO:117
ATATCTAGACTCGAGGGTCTTGATATCGAAAAATTGCACG
>SEQIDNO:118
ATATCTAGAAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTC
>SEQIDNO:119
ATAGGATCCTGTTAAAAGCGATTTATAATTTACACCGTTTTGGTGTA
>SEQIDNO:120
ATACCCGGGAAAAGTTTTTGATGAAATTCAATCTAAAGACT
>SEQIDNO:121
AAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTCTCTAATTCTTTTGATGATCTTCATCACTGTCTCTGCTTCTTCTGCTTCAAATCCTTCTTTAGCTCCTGTTTACTCTTCCATGGCTACATTCTCTCCTCGAATCCAAATGGGAAGTGGTGAAGAAGATAGATTTGATGCTCATAAGAAACTTCTGATTGGTCTCATAATCAGTTTCTCTTCTCTTGGCCTTATAATCTTGTTCTGTTTTGGCTTTTGGGTTTATCGCAAGAACCAATCTCCAAAATCCATCAACAACTCAGATTCTGAGAGTGGGAATTCATTTTCCTTGTTAATGAGACGACTTGGCTCGATTAAAACTCAGAGAAGAACTTCTATCCAAAAGGGTTACGTGCAATTTTTCGATATCAAGACCCTCGAGAAAGCGACAGGCGGTTTTAAAGAAAGTAGTGTAATCGGACAAGGCGGTTTCGGATGCGTTTACAAGGGTTGTTTGGACAATAACGTTAAAGCAGCGGTCAAGAAGATCGAGAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGACTTGTTGAGCAAGATCCATCACTCGAACGTTATATCATTGTTGGGCTCTGCAAGCGAAATCAACTCGAGTTTCATCGTTTATGAGCTTATGGAGAAAGGATCATTAGATGAACAGTTACATGGGCCTTCTCGTGGATCAGCTCTAACATGGCACATGCGTATGAAGATTGCTCTTGATACAGCTAGAGGACTAGAGTATCTCCATGAGCATTGTCGTCCACCAGTTATCCACAGAGATTTGAAATCTTCGAATATTCTTCTTGATTCTTCCTTCAACGCCAAGATTTCAGATTTCGGTTTTGCTGTATCGCTGGATGAACATGGCAAGAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATACCTCCTTGACGGAAAACTGACGGATAAGAGTGATGTTTATGCATTTGGGGTAGTTCTGCTTGAACTCTTGTTGGGTAGACGACCAGTTGAAAAATTAACTCCAGCTCAATGCCAATCTCTTGTAACTTGGGCAATGCCACAACTTACCGATAGATCCAAGCTTCCAAACATTGTGGATGCCGTTATAAAAGATACAATGGATCTCAAACACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTGCAGCCAGAACCAAGTTACCGGCCGTTGATAACCGATGTTCTTCACTCACTTGTTCCACTGGTTCCGGTAGAGCTAGGAGGGACTCTCCGGTTAACAAGATGATTCACAG
>SEQIDNO:122
TCGGACAAGGCGGTTTCGGATGCGT
>SEQIDNO:123
TAGTCCTCTAGCTGTATCAAGAGCAATCTTCA
>SEQIDNO:124
TATCATTGTTGGGCTCTGCAAGTGAAATCAAC
>SEQIDNO:125
TGGAGAAAGGATCCTTAGATGATCAGTTACAT
>SEQIDNO:126
TCCATGTAACTGATCATCTAAGGATCCTTTC
>SEQIDNO:127
ATAAACGACGAAACTCGAGTTGATTTCACTTGCAGAG
>SEQIDNO:128
AAAATGAAGAAACTGGTTCATCTTCAGT
>SEQIDNO:129
TAGACTTCTATTCTCACATTCTTACAC
>SEQIDNO:130
TCCAATGATCCATTATGCATCAGCTCA
>SEQIDNO:131
TCGTTCTCAAATTCTCTCTCAGCATGTTG
>SEQIDNO:132
TCCGGATATGCCAGGTCAGCGCTGATCCA
>SEQIDNO:133
TCCAGGGATCCCTTCTCCATGAGCTCAT
>SEQIDNO:134
AAAGAGCTCTCTGTGTCAGGAATCCAAATGGGAAGTGGTGA
>SEQIDNO:135
ATAGCTAGCTGTTAAAAGCGATTTATAATTTACACCGTTTTGGTGTA>SEQIDNO:136
ATAGCTAGCAGAAAAGTTTTTGATGAAATTCAATCTAAAGACT
>SEQIDNO:137
TCTGGGTTTATCATCATACCAAGTATCCA
>SEQIDNO:138
ATTCAGTTCCATCAAGATTGTTGGCATGGAC
>SEQIDNO:139
TGGAGGGAGGTGGCCCTGAGTGCGAGAAGGA
>SEQIDNO:140
GCTGGATCTGCTTGGCAGGATTCGGCA
>SEQIDNO:141
ATATCTAGATGCTAGGTTATAGATCCATGCA
>SEQIDNO:142
ATAGGATCCACCAGAACTATATATACGAAGGCA
>SEQIDNO:143
AGGACGACTTGGCTCGATTAAAATCACAGGTCGTGATATG
>SEQIDNO:144
TAATCGAGCCAAGTCGTCCTACATATATATTCCTA
>SEQIDNO:145
TAATCGAGCCAAGTCGTCCTCTCTTTTGTATTCCA
>SEQIDNO:146
AGGACGACTTGGCTCGATTAAAATCAAAGAGAATCAATGATC
>SEQIDNO:147
GACGACTTGGCTCGATTAAAA
>SEQIDNO:148
TGCTAGGTTATAGATCCATGCAAATATGGAGTAGATGTACAAACACACGCTCGGACGCATATTACACATGTTCATACACTTAATACTCGCTGTTTTGAATTGATGTTTTAGGAATATATATGTAGAGAGAGCTTCCTTGAGTCCATTCACAGGTCGTGATATGATTCAATTAGCTTCCGACTCATTCATCCAAATACCGAGTCGCCAAAATTCAAACTAGACTCGTTAAATGAATGAATGATGCGGTAGACAAATTGGATCATTGATTCTCTTTGATTGGACTGAAGGGAGCTCCCTCTCTCTTTTGTATTCCAATTTTCTTGATTAATCTTTCCTGCACAAAAACATGCTTGATCCACTAAGTGACATATATGCTGCCTTCGTATATATAGTTCTGGT
>SEQIDNO:149
TGCTAGGTTATAGATCCATGCAAATATGGAGTAGATGTACAAACACACGCTCGGACGCATATTACACATGTTCATACACTTAATACTCGCTGTTTTGAATTGATGTTTTAGGAATATATATGTAGGACGACTTGGCTCGATTAAAATCACAGGTCGTGATATGATTCAATTAGCTTCCGACTCATTCATCCAAATACCGAGTCGCCAAAATTCAAACTAGACTCGTTAAATGAATGAATGATGCGGTAGACAAATTGGATCATTGATTCTCTTTGATTTTAATCGAGCCAAGTCGTCCTCTCTTTTGTATTCCAATTTTCTTGATTAATCTTTCCTGCACAAAAACATGCTTGATCCACTAAGTGACATATATGCTGCCTTCGTATATATAGTTCTGGT
>SEQIDNO:150
CTTAGCCAATGGATGAGGATGACACGATAATGATAATCAAAGATCAACATGGCACGCTCAAGACCGCCTTTAGAAGTCCTCTCTAAATTCTTTCTTCCGATCTCCTAAATATGTTTTGTTTTGGTCAAATAAATTGATAGGTAATACTTAGTGATTATACTATTTGGTTTTTGTTTTATCATTGACTATTTCACTTTTATAAATCAAATACTTATCAAAATTGTTCTTTCCGTATGTATTCATATTTTCTAATATTGTAAAGATTTGTTTCACCTAACATCTGTACCCATCTTTGATCATTGACAAAATATATATTAGAATGGCCTTAGAACGTGTTAGGCATCTTCCTACTATTATCATATTACCTAATCCCCAATTTTATTACATTTTTTAATTTCTAAAAGAGCTTGAATATAATGTCATTTCGAATATCTCTGTTCATCTTTTTTTTTTTCTGTGCGACTTCTGACCCAAAGCCTTCGACGATTTTTTCCAATCTGAAAACTTTTGAATAAGGAACTTAGTCAATGGTCAACACCTTGCTAATTAAACAAAGTTCCATTGATACAATAATGAGATTTTTGTACATTAACGCTTTCATATAGTTTTTGCGATTCAACAGATAATCTTAAAATTAAGGAGTCCTATTGATAAAGTCTTGTTCAAACGTACAAACTCAATCCACACAAAACCTTCATAAAATACGATATAGGAAATAAAGATTGTTTTTGCGTGAGAAAATACTATATGAACTCAAAAGATTTTAAAACAATTTGTATTAATACATAAACAATTGTTGTGATACACCCGTGTAAAATTTTAAGATTGTTTTTTTCTGAAATTCTTCAAGGAAACTTATAGCTTAAAATCTACACTTCAAATACTCTGTTTTAAAGGCATTAAAAATAACTGCGTTTCAGAAAAATATTGAAATTTTAGCTGATCTTTTGCTACAAATTTAAGGAATCTTGGCACCTGCAGAATCTATAACATGTTCATTAAGTAATGCAATAGTTATACAATTATACATTATTTGCATCATACTTATATTATAGTGATATTAACAAACCCATGTTCTCAGCACACTTTTACGTAGAAAAACATAAAAACCCAAATAGGAAGAAGCCACTCATAAGGATAATGGGTTTATATAATTCACAGCAAAGAAAGCCATCGAACTATTCGATTAATTATCCATTCTTTTTTTTTTTAGTTTGAATGTATAAGAACAAAGAGTTGTTACGCATCATGACAATGTCTTAGAAAACAAAAGAAATGAATAAAAAAGTAAAACGAAAAATAAAAAGTGAGGATGAAGTTGTTGAATGAGTTGGCGAGGCGGCGACTTTTTCATACATTCCATTTACTTAATTCCTAAAGTCCTTCTCACATCTCTTTGTTATATAATGACACCATAACCATTTCTTCTCTTCACAATCTTTACAAGAATATCTCTCTTCTACAGTAAACAAAAA
>SEQIDNO:151
ACGTAAGCTTCTTAGCCAATGGATGAGGATG
>SEQIDNO:152
ACGTTCTAGATTTTTGTTTACTGTAGAAGAG
>SEQIDNO:153
TGCTGCTTCAAATCCTTCTATAGCTCCTGTTTATACCACCATGACTACTTTCTCTCCAGGAATTCAAATGGGAAGTGGTGAAGAACACAGATTAGATGCACATAAGAAACTCCTGATTGGTCTTATAATCAGTTCCTCTTCTCTTGGTATCGTAATCTTGATTTGCTTTGGCTTCTGGATGTACTGTCGCAAGAAAGCTCCCAAACCCATCAAGATTCCGGATGCTGAGAGTGGGACTTCATCATTTTCAATGTTTGTGAGGCGGCTAAGCTCAATCAAAACTCAGAGAACATCTAGCAATCAGGGTTATGTGCAGCGTTTCGATTCCAAGACGCTAG
>SEQIDNO:154
TATGGATCCTGCTGCTTCAAATCCTTCTATAGCTCCTG
>SEQIDNO:155
TATTCTAGACTAGCGTCTTGGAATCGAAACGCTGCAC
>SEQIDNO:156
TATGAGCTCTGCTGCTTCAAATCCTTCTATAGCTCCTG
>SEQIDNO157
TATGAGCTCCTAGCGTCTTGGAATCGAAACGCTGCAC
>SEQIDNO:158
GCAGATCGCTCCTCCCGTCGTGAT
>SEQIDNO:159
CGCCTAGG AGCGACGGGTACTCGATCAT
>SEQIDNO:160
CCTAGCTA AGCGACGGGTACTCGATCAT
>SEQIDNO:161
GCTCCTCCCGTCGTGATCACAGTGGTGAGGCACCACCATTACCACCGGGAGCTGGTCATCTCCGCTGTCCTCGCCTGCGTCGCCACCGCCATGATCCTCCTCTCCACACTCTACGCCTGGACGATGTGGCGGCGGTCTCGCCGGACCCCCCACGGCGGCAAGGGCCGCGGCCGGAGATCAGGGATCACACTGGTGCCAATCCTGAGCAAGTTCAATTCAGTGAAGATGAGCAGGAAGGGGGGCCTTGTGACGATGATCGAGTACCCGTCGCT
>SEQIDNO:162
CGGGATCCCGGCATAACAAACTCGTGCATCC
>SEQIDNO:163
CCATCGATGGCGCCAAACACAATA GCT CAA
>SEQIDNO:164
GTAAGTAATTTCAAGTTTAAGTTTCATAAGCATAACAAACTCGTGCATCCAATTTGAACCATTTTACTGTCCTGGCATCCTCTAAATATTTCCTTGATTATCAGCTTATCTTCATCCCATTGAATCAGAAAATTACCAACCCTTGTTTTAGCTTTAATCATTGTTATTTGTTGTCTGAGGGGCTACACTGTTTCTTTATATTGGTGAAGGAGTTACCAGGCAAAAATTCCCACCTCCTGATATTAGCAGAGACCCCCTTTTTTGTGCCTGTATGCATACTAACAAATAATACAGATGGAAATATGTATATTTGTTATATCATGGATTGATGCTTTATGTTTAGCAAGTCCATGCAATGGTAGTCAAAAGATGTAAACTTTTGAATGATATATTGGGGCTTTAGATTAGCCATTTTTACCCTCACTTGAAAATGACAATTTTGCCCTTCCGATCTACTTTCTCTTGTCACCTCAGGCAGGCTCTTGAAAGTTCTTATCCCTGAATTCCGTGGAAGTTTATTATTCTAATGTTATAGTTTACTTAAAGTGTCGCATAATCTACTAGAGCCTAATGGAAGTACTGATGGACTTTGTTTTGCTACAATCACTGCTTGCAAGAATGACTACTTTGGGGCATTTCTAATATATTATTGATATTTCTATGATGTATTGTTGTCCATGTACTTCAGTCCTTACAGCGACTAGTCCTATTTCTGCATTGATAAATTGTTCACTGTCAGACCATCTTGAGTGGCAAGAATGAGTATAACATGTCTTGTTTTTCTGTGATTTCAAGGTAAGCGCACATGCGCACAGTGTACACCGTCACCACATGTGAGTACACCCCCTAGTACACATGTAAAAAAAGCACAGTCCAGTTATTAAATGGACCATTGGCATTGATTGTCGTGTTTATAGGAGTAAAGATACATGTAAACACTAATTCATTGGGAGATATAAATTTATACTACCATTGAATGTGACATAGGCTCTAAGGTTTTTAGTTCAGCATTTCGAAAGAGCTTTGTTTGGTTGGCTTGGGATGGAATCAGGTGACAACATTTTTGGGTTGCAGCAAATTTAATATTGATTGAGGAGGCATACAACGAAATCATTGAGCTATTGTGTTTGGCGTTACATCTATGGAATTTCTTCTAATCTGATTATTGTTTGTA
>SEQIDNO:165
GATCCGCTCCTCCCGTCGTGAT
>SEQIDNO:166
AACGCGATCGCTTGCATGCCTGCAGTAGAC
>SEQIDNO:167
GACTTAATTAAGAATTCGAGCTCGGGTA
>SEQIDNO:168
TCGTAGTGCACCACCATTTCCACCGCGAGCTGGTCATCGCCGCCGTCCTCGCCTGCATCGCCACCGTCACGATCTTCCTTTCCACGCTCTACGCTTGGACACTATGGCGGCGATCTCGCCGGAGCACCGGCGGCAAGGTCACCAGGAGCTCAGACGCAGCGAAGGGGATCAAGCTGGTGCCGATCTTGAGCAGGTTCAACTCGGTGAAGATGAGCAGGAAGAGGCTGGTTGGGATGTTCGAGTACCCGTCG
>SEQIDNO:169
GCAGATCTCGTAGTGCACCACCATTTC
>SEQIDNO:170
CGCCTAGGCGACGGGTACTCGAACATC
>SEQIDNO:171
CCTAGCTACGACGGGTACTCGAACATC
>SEQIDNO:172
GATCCTCGTAGTGCACCACCATTTC
>SEQIDNO:173
CTCGTAGTGCACCACCATTTC
>SEQIDNO:174
AATGGGACCGCCTCCGTTGCTCCGGCGGTGCCGGCGCCGCCTCCCGTCGTGATCATCGTGGAGCGGCGCCATCATTTCCACCGCGAGCTAGTCATCGCCTCCGTTCTCGCCTCCATCGCCATCGTCGCGATTATCCTCTCCACGCTCTATGCGTGGATCCTGTGGCGGCGGTCTCGCCGGCTGCCCAGCGGCAAGGGCGCCAGGAGCGCAGACACCGCGAGGGGAATCATGCTGGTGCCGATCCTGAGCAAGTTCCACTCA
>SEQ ID NO:175
GCAGATCAATGGGACCGCCTCCGTTG
>SEQ ID NO:176
CGCCTAGGTGAGTGGAACTTGCTCAGGA
>SEQ ID NO:177
CCTAGCTATGAGTGGAACTTGCTCAGGA
>SEQIDNO:178
GTAAGTATTCTTGCAACACATTACTATTTTCAATAACCACAAGTTTAAAAGCTTGAGTCCATTTCGCAAACCAGTTGTTCATAACCAAATTCTTAGGTAATTAGGTCCAATTGAGAAAATCTGATCATTGAACACTAGCAGGAAATAACTCAGACATAGTTTCTGCATACTATAATGATGCTTAATATATTTGTTCTCTTTTGAGATTGTATTGCATAGACATTTCTGTGTAAAATAATGTTTTACATCATGTATATATATCACTTTTTATAG
>SEQIDNO:179
CGGGATCCTTCTTGCAACACATTACTATTT
>SEQIDNO:180
CCATCGATGAAATGTCTATGCAATACAATCTCAA
>SEQIDNO:181
GATCCAATGGGACCGCCTCCGTTG
>SEQIDNO:182
CAATGGGACCGCCTCCGTTGA
>SEQIDNO:183
GGCCCCGGCCGCGCGCGTCTCCGTGTCCTCCGCGACTGTGCACGTTTCGTCGGGAGCGGCGTGCCCACGCCCACCCCCCGTCCACCAGCCAGCAACCGACGGCACTGGTGACACGCGGCTGGTCCGCTCGGTCCGCCCCGCGGCTCCAGATCACGGCAAGCGCGCCCGCCGCCCGCTGCTGCGCTGCGCTGCACGTCCCGCCCTGACGCCACGCCACGCCAAGCGCGACACGACACGACACGACACGACCCGACCCCCGCCAACGAAACGCCGAAACGCGGCAACGCGTGACGGGCGCGCATGGTCGATGCTCTACCCGCGCGTCCGCCCCACGCCAATCTCCCGGCGGGTCCCTCGTGGGACGGGGAACGCGATGCGGCTGCAGGCTGCGACCGCGACCGCGACCGCGACCGCGCCCACGTGAAGGCAGGCAGGCAGCCCCGGAGCGGGCGCGGCGGTGGGCCAACGACGCGTTGCCGTCGCGAATCTTCTTCTGGCCACGGCCAAGGGCCAATCGCCCGCTCCGCTCCGCTCCGCACTCCGCCTCCGCTAGGGAATATGGAACCCGATCCCACGGCCCTCTGGGTCTGGTCGACGGGTCCTCTCGCCGTGGCAGCTGCTTCCCGGACCGGAGGATCGCTGAGCGCGGACGCCACTGCCATTGCCGTCCGACTATAGTTGTTAATTACCATAAAATAATTTGTTAACGATAAAACCCGTGTCAGGCACCGTCGTCTGGACGCTGCTATGGGATAACCATTCGCGTACGTCGGTTGTATGGGTGGGATCCTCTGCGGCACGCCATTCTGGTGCTGCTAGTGGAATAGACAAAAAAAGGGCCGACGGTGTTTGCTCGTGGCAGGCCACACAGAGTGACAACCAGAGTGGTTGCCGCAAAAACAACCAATCACACAAAAAGTGTTGTACCGGTGGAGGACAGCCATTAATCAGCAGGCCGGCTTCGCGGCCAAAAGAAACGGAGAAGAGGAAAAAGGGGGGC
>SEQIDNO:184
TCCCAAGCTTGCGCGTCTCCGTGTCCTC
>SEQIDNO:185
AGTAAAGCTTCCCCCTTTTTCCTCTTCTCC
>SEQIDNO:186
TAATGGTCGAGTGAGGCCCGTATAGATGTAGTTAAATAGCTAAAATTTTTGGAGAAATAAGCATTTTTTTGGAAGAATATATTTAAACATGGGCTTGTAAAACTTGGCTGTAAAGATTTGGAATTTAGGATCTTGGAGCCCCAAAACTGTATAAACTTGCTTAGGGACCCGTGTCTTGTGTGTTGCAGACCAAAAAATTTAGAAAGCATCTAAACACCTATTTGAATGTAAAGTTTACAGCCAAAAGTTTTAGGATGTAAAGATTTGGGATCTAAAAGTAGTCATTAGGAAATAACACGTTAGAGAGAGAGAGTAGATCTTCTTATTGGTTTCTCATGCACTAATCGAACCAATCACTGGACCACTTGAACCAAACTTTATCACATTGAACTTTGTCAGTTCAGTTCGAACGCAGGACTGGAGCTGCCCTTAAGGCCAATTGCTCAAGATTCATTCAACAATTGAAACATCTCCCATGATTAAATCAGTATAAGGTTGCTATGGTCTTGCTTGACAAAGTTTTTTTTTTGAGGGAATTTCAACTAAATTTTTGAGTGAAACTATCAAATACTGATTTTAAAAATTTTTTATAAAAGGAAGCGCAGAGATAAAAGGCCATCTATGCTACAAAAGTACCCAAAAATGTAATCCTAAAGTATGAATTGCATTTTTTTTGTTTGGACGAAAGGAAAGGAGTATTACCACAAGAATGATATCATCTTCATATTTAGATCTTTTTTGGGTAAAGCTTGAGATTCTCTAAATATAGAGAAATCAGAAGAAAAAAAAACCGTGTTTTGGTGGTTTTGATTTCTAGCCTCCACAATAACTTTGACGGCGTCGACAAGTCTAACGGACACCAAGCAGCGAACCACCAGCGCCGAGCCAAGCGAAGCAGACGGCCGAGACGTTGACACCTTCGGCGCGGCATCTCTCGAGAGTTCCGCTCCGGCGCTCCACCTCCACCGCTGGCGGTTTCTTATTCCGTTCCGTTCCGCCT
>SEQIDNO:187
AACTGCAGGGTCGAGTGAGGCCCGTA
>SEQIDNO:188
TTCTGCAGGGAACGGAACGGAATAAGAA
>SEQIDNO:189
GCCGTGGGTCGTTTAAGCTGCCGCTGTACCTGTGTCGTCTGGTGCCTTCTGGTGTACCTGGGAGGTTGTCGTCTATCAAGTATCTGTGGTTGGTGTCATGAGTCAGTGAGTCCCAATACTGTTCGTGTCCTGTGTGCATTATACCCAAAACTGTTATGGGCAAATCATGAATAAGCTTGATGTTCGAACTTAAAAGTCTCTGCTCAATATGGTATTATGGTTGTTTTTGTTCGTCTCCT
>SEQIDNO:190
TAGGTACCGCCGTGGGTCGTTTAAGCT
>SEQIDNO:191
AAGGTACCAGGAGACGAACAAAAACAA
>SEQIDNO:192
AACGCGATCGTAATGGTCGAGTGAGGCCCGTATA
>SEQIDNO:193
ATGAAGAAACTGGTTCATCTTCAGTTTCTGTTTCTTGTCAAGATCTTTGCTACTCAATTCCTCACTCCTTCTTCATCATCTTTTGCTGCTTCAAATCCTTCTATAGCTCCTGTTTATACCACCATGACTACTTTCTCTCCAGGAATTCAAATGGGAAGTGGTGAAGAACACAGATTAGATGCACATAAGAAACTCCTGATTGGTCTTATAATCAGTTCCTCTTCTCTTGGTATCGTAATCTTGATTTGCTTTGGCTTCTGGATGTACTGTCGCAAGAAAGCTCCCAAACCCATCAAGATTCCGGATGCTGAGAGTGGGACTTCATCATTTTCAATGTTTGTGAGGCGGCTAAGCTCAATCAAAACTCAGAGAACATCTAGCAATCAGGGTTATGTGCAGCGTTTCGATTCCAAGACGCTAGAGAAAGCGACAGGCGGTTTCAAAGACAGTAATGTAATCGGACAGGGCGGTTTCGGATGCGTTTACAAGGCTTCTTTGGACAGCAACACTAAAGCAGCGGTTAAAAAGATCGAAAACGTTAGCCAAGAAGCAAAACGAGAATTTCAGAATGAAGTTGAGCTGTTGAGCAAGATCCAGCACTCCAATATTATATCATTGTTGGGCTCTGCAAGTGAAATCAACTCGAGTTTCGTCGTTTATGAGTTGATGGAGAAAGGATCCTTAGATGATCAGTTACATGGACCTTCGTGTGGATCCGCTCTAACATGGCATATGCGTATGAAGATTGCTCTAGATACAGCTAGAGGATTAGAGTATCTCCATGAACATTGTCGTCCACCAGTTATCCACAGGGACCTGAAATCGTCTAATATACTTCTTGATTCTTCCTTCAATGCCAAGATTTCAGATTTTGGTCTGGCTGTATCGGTTGGAGTGCATGGGAGTAACAACATTAAACTCTCTGGGACACTTGGTTATGTTGCCCCGGAATATCTCCTAGACGGAAAGTTGACGGATAAGAGTGATGTCTATGCATTTGGGGTGGTTCTTCTTGAACTTTTGTTGGGTAGAAGGCCGGTTGAGAAATTGAGTCCATCTCAGTGTCAATCTCTTGTGACTTGGGCAATGCCACAACTTACCGATAGATCGAAACTCCCAAACATCGTGGATCCGGTTATAAAAGATACAATGGATCTTAAGCACTTATACCAGGTAGCAGCCATGGCTGTGTTGTGCGTTCAGCCAGAACCGAGTTACCGGCCGCTGATAACCGATGTTCTTCACTCACTTGTTCCATTGGTTCCGGTCGAACTAGGAGGGACTCTCCGGTTAACCCGATGA
>SEQIDNO:194
MKKLVHLQFLFLVKIFATQFLTPSSSSFAASNPSIAPVYTTMTTFSPGIQMGSGEEGRLDAHKKLLIGLIISSSSLGIVILICFGFWMYCRKKAPKPIKIPDAESGTSSFSMFVRRLSSIKTQRTSSNQGYVQRFDSKTLEKATGGFKDSNVIGQGGFGCVYKASLDSNTKAAVKKIENVSQEAKREFQNEVELLSKIQHSNIISLLGSASEINSSFVVYELMEKGSLDDQLHGPSCGSALTWHMRMKIALDTARGLEYLHEHCRPPVIHRDLKSSNILLDSSFNAKISDFGLAVSVGVHGSNNIKLSGTLGYVAPEYLLDGKLTDKSDVYAFGVVLLELLLGRRPVEKLSPSQCQSLVTWAMPQLTDRSKLPNIVDPVIKDTMDLKHLYQVAAMAVLCVQPEPSYRPLITDVLHSLVPLVPVELGGTLRLTR
>SEQIDNO:195
AATCCAGCTCATTCTGGAATTCCTTCTCGCA
>SEQIDNO:196
TGAACTTGCTCAGGATTGGCACCAGTGTGATC
>SEQIDNO:197
MEIPAAPPPPLPVLCSYVVFLLLLSSCSLARGRIAVSSPGPSPVAAAVTANETASSSSSPVFPAAPPVVITVVRHHHYHRELVISAVLACVATAMILLSTLYAWTMWRRSRRTPHGGKGRGRRSGITLVPILSKFNSVKMSRKGGLVTMIEYPSLEAATGKFGESNVLGVGGFGCVYKAAFDGGATAAVKRLEGGGPDCEKEFENELDLLGRIRHPNIVSLLGFCVHGGNHYIVYELMEKGSLETQLHGSSHGSALSWHVRMKIALDTARGLEYLHEHCNPPVIHRDLKPSNILLDSDFNAKIADFGLAVTGGNLNKGNLKLSGTLGYVAPEYLLDGKLTEKSDVYAFGVVLLELLMGRKPVEKMSPSQCQSIVSWAMPQLTDRSKLPNIIDLVIKDTMDPKHLYQVAAVAVLCVQPEPSYRPLITDVLHSLVPLVPAELGGTLRVAEPPSPSPDQRHYPC
>SEQIDNO:198
TATACCGGTAAAATGAGAGAGCTTCTTCTTCTTCTTCTTCTTCATTTTCAGTC
>SEQIDNO:199
ATATACCGGTCTTGTTAACCGGAGAGTCCCTCCTAGCTC
>SEQIDNO:200
CGCTCCTCCCGTCGTGAT
对比文件
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序列表
<110> 波夫曼斯种植公司
<120> 提高植物水分利用效率的方法和手段
<130> 22542-017001WO
<140> IB2009/006275
<141> 2009-06-12
<150> 61/132,067
<151> 2008-06-13
<160> 200
<170> PatentIn 第3.5版
<210> 1
<211> 1299
<212> DNA
<213> 拟南芥
<400> 1
atgagagagc ttcttcttct tcttcttctt cattttcagt ctctaattct tttgatgatc 60
ttcatcactg tctctgcttc ttctgcttca aatccttctt tagctcctgt ttactcttcc 120
atggctacat tctctcctcg aatccaaatg ggaagtggtg aagaagatag atttgatgct 180
cataagaaac ttctgattgg tctcataatc agtttctctt ctcttggcct tataatcttg 240
ttctgttttg gcttttgggt ttatcgcaag aaccaatctc caaaatccat caacaactca 300
gattctgaga gtgggaattc attttccttg ttaatgagac gacttggctc gattaaaact 360
cagagaagaa cttctatcca aaagggttac gtgcaatttt tcgatatcaa gaccctcgag 420
aaagcgacag gcggttttaa agaaagtagt gtaatcggac aaggcggttt cggatgcgtt 480
tacaagggtt gtttggacaa taacgttaaa gcagcggtca agaagatcga gaacgttagc 540
caagaagcaa aacgagaatt tcagaatgaa gttgacttgt tgagcaagat ccatcactcg 600
aacgttatat cattgttggg ctctgcaagc gaaatcaact cgagtttcat cgtttatgag 660
cttatggaga aaggatcatt agatgaacag ttacatgggc cttctcgtgg atcagctcta 720
acatggcaca tgcgtatgaa gattgctctt gatacagcta gaggactaga gtatctccat 780
gagcattgtc gtccaccagt tatccacaga gatttgaaat cttcgaatat tcttcttgat 840
tcttccttca acgccaagat ttcagatttc ggtcttgctg tatcgctgga tgaacatggc 900
aagaacaaca ttaaactctc tgggacactt ggttatgttg ccccggaata cctccttgac 960
ggaaaactga cggataagag tgatgtttat gcatttgggg tagttctgct tgaactcttg 1020
ttgggtagac gaccagttga aaaattaact ccagctcaat gccaatctct tgtaacttgg 1080
gcaatgccac aacttaccga tagatccaag cttccaaaca ttgtggatgc cgttataaaa 1140
gatacaatgg atctcaaaca cttataccag gtagcagcca tggctgtgtt gtgcgtgcag 1200
ccagaaccaa gttaccggcc gttgataacc gatgttcttc actcacttgt tccactggtt 1260
ccggtagagc taggagggac tctccggtta acaagatga 1299
<210> 2
<211> 432
<212> PRT
<213> 拟南芥
<400> 2
Met Arg Glu Leu Leu Leu Leu Leu Leu Leu His Phe Gln Ser Leu Ile
1 5 10 15
Leu Leu Met Ile Phe Ile Thr Val Ser Ala Ser Ser Ala Ser Asn Pro
20 25 30
Ser Leu Ala Pro Val Tyr Ser Ser Met Ala Thr Phe Ser Pro Arg Ile
35 40 45
Gln Met Gly Ser Gly Glu Glu Asp Arg Phe Asp Ala His Lys Lys Leu
50 55 60
Leu Ile Gly Leu Ile Ile Ser Phe Ser Ser Leu Gly Leu Ile Ile Leu
65 70 75 80
Phe Cys Phe Gly Phe Trp Val Tyr Arg Lys Asn Gln Ser Pro Lys Ser
85 90 95
Ile Asn Asn Ser Asp Ser Glu Ser Gly Asn Ser Phe Ser Leu Leu Met
100 105 110
Arg Arg Leu Gly Ser Ile Lys Thr Gln Arg Arg Thr Ser Ile Gln Lys
115 120 125
Gly Tyr Val Gln Phe Phe Asp Ile Lys Thr Leu Glu Lys Ala Thr Gly
130 135 140
Gly Phe Lys Glu Ser Ser Val Ile Gly Gln Gly Gly Phe Gly Cys Val
145 150 155 160
Tyr Lys Gly Cys Leu Asp Asn Asn Val Lys Ala Ala Val Lys Lys Ile
165 170 175
Glu Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val Asp
180 185 190
Leu Leu Ser Lys Ile His His Ser Asn Val Ile Ser Leu Leu Gly Ser
195 200 205
Ala Ser Glu Ile Asn Ser Ser Phe Ile Val Tyr Glu Leu Met Glu Lys
210 215 220
Gly Ser Leu Asp Glu Gln Leu His Gly Pro Ser Arg Gly Ser Ala Leu
225 230 235 240
Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
245 250 255
Glu Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp Leu
260 265 270
Lys Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile Ser
275 280 285
Asp Phe Gly Leu Ala Val Ser Leu Asp Glu His Gly Lys Asn Asn Ile
290 295 300
Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
305 310 315 320
Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
325 330 335
Leu Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Thr Pro Ala
340 345 350
Gln Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg
355 360 365
Ser Lys Leu Pro Asn Ile Val Asp Ala Val Ile Lys Asp Thr Met Asp
370 375 380
Leu Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val Gln
385 390 395 400
Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu
405 410 415
Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr Arg
420 425 430
<210> 3
<211> 1299
<212> DNA
<213> 拟南芥
<400> 3
atgagagagc ttcttcttct tcttcttctt cattttcagt ctctaattct tttgatgatc 60
ttcatcactg tctctgcttc ttctgcttca aatccttctt tagctcctgt ttactcttcc 120
atggctacat tctctcctcg aatccaaatg ggaagtggtg aagaagatag atttgatgct 180
cataagaaac ttctgattgg tctcataatc agtttctctt ctcttggcct tataatcttg 240
ttctgttttg gcttttgggt ttatcgcaag aaccaatctc caaaatccat caacaactca 300
gattctgaga gtgggaattc attttccttg ttaatgagac gacttggctc gattaaaact 360
cagagaagaa cttctatcca aaagggttac gtgcaatttt tcgatatcaa gaccctcgag 420
aaagcgacag gcggttttaa agaaagtagt gtaatcggac aaggcggttt cggatgcgtt 480
tacaagggtt gtttggacaa taacgttaaa gcagcggtca agaagatcga gaacgttagc 540
caagaagcaa aacgagaatt tcagaatgaa gttgacttgt tgagcaagat ccatcactcg 600
aacgttatat cattgttggg ctctgcaagc gaaatcaact cgagtttcat cgtttatgag 660
cttatggaga aaggatcatt agatgaacag ttacatgggc cttctcgtgg atcagctcta 720
acatggcaca tgcgtatgaa gattgctctt gatacagcta gaggactaga gtatctccat 780
gagcattgtc gtccaccagt tatccacaga gatttgaaat cttcgaatat tcttcttgat 840
tcttccttca acgccaagat ttcagatttc ggttttgctg tatcgctgga tgaacatggc 900
aagaacaaca ttaaactctc tgggacactt ggttatgttg ccccggaata cctccttgac 960
ggaaaactga cggataagag tgatgtttat gcatttgggg tagttctgct tgaactcttg 1020
ttgggtagac gaccagttga aaaattaact ccagctcaat gccaatctct tgtaacttgg 1080
gcaatgccac aacttaccga tagatccaag cttccaaaca ttgtggatgc cgttataaaa 1140
gatacaatgg atctcaaaca cttataccag gtagcagcca tggctgtgtt gtgcgtgcag 1200
ccagaaccaa gttaccggcc gttgataacc gatgttcttc actcacttgt tccactggtt 1260
ccggtagagc taggagggac tctccggtta acaagatga 1299
<210> 4
<211> 432
<212> PRT
<213> 拟南芥
<400> 4
Met Arg Glu Leu Leu Leu Leu Leu Leu Leu His Phe Gln Ser Leu Ile
1 5 10 15
Leu Leu Met Ile Phe Ile Thr Val Ser Ala Ser Ser Ala Ser Asn Pro
20 25 30
Ser Leu Ala Pro Val Tyr Ser Ser Met Ala Thr Phe Ser Pro Arg Ile
35 40 45
Gln Met Gly Ser Gly Glu Glu Asp Arg Phe Asp Ala His Lys Lys Leu
50 55 60
Leu Ile Gly Leu Ile Ile Ser Phe Ser Ser Leu Gly Leu Ile Ile Leu
65 70 75 80
Phe Cys Phe Gly Phe Trp Val Tyr Arg Lys Asn Gln Ser Pro Lys Ser
85 90 95
Ile Asn Asn Ser Asp Ser Glu Ser Gly Asn Ser Phe Ser Leu Leu Met
100 105 110
Arg Arg Leu Gly Ser Ile Lys Thr Gln Arg Arg Thr Ser Ile Gln Lys
115 120 125
Gly Tyr Val Gln Phe Phe Asp Ile Lys Thr Leu Glu Lys Ala Thr Gly
130 135 140
Gly Phe Lys Glu Ser Ser Val Ile Gly Gln Gly Gly Phe Gly Cys Val
145 150 155 160
Tyr Lys Gly Cys Leu Asp Asn Asn Val Lys Ala Ala Val Lys Lys Ile
165 170 175
Glu Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val Asp
180 185 190
Leu Leu Ser Lys Ile His His Ser Asn Val Ile Ser Leu Leu Gly Ser
195 200 205
Ala Ser Glu Ile Asn Ser Ser Phe Ile Val Tyr Glu Leu Met Glu Lys
210 215 220
Gly Ser Leu Asp Glu Gln Leu His Gly Pro Ser Arg Gly Ser Ala Leu
225 230 235 240
Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
245 250 255
Glu Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp Leu
260 265 270
Lys Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile Ser
275 280 285
Asp Phe Gly Phe Ala Val Ser Leu Asp Glu His Gly Lys Asn Asn Ile
290 295 300
Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
305 310 315 320
Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
325 330 335
Leu Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Thr Pro Ala
340 345 350
Gln Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg
355 360 365
Ser Lys Leu Pro Asn Ile Val Asp Ala Val Ile Lys Asp Thr Met Asp
370 375 380
Leu Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val Gln
385 390 395 400
Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu
405 410 415
Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr Arg
420 425 430
<210> 5
<211> 1160
<212> DNA
<213> 拟南芥
<400> 5
atgggaagtg gtgaagaaga tagatttgat gctcataaga aacttctgat tggtctcata 60
atcagtttct cttctcttgg ccttataatc ttgttctgtt ttggcttttg ggtttatcgc 120
aagaaccaat ctccaaaatc catcaacaac tcagattctg agagtgggaa ttcattttcc 180
ttgttaatga gacgacttgg ctcgattaaa actcagagaa gaacttctat ccaaaagggt 240
tacgtgcaat ttttcgatat caagaccctc gagaaagcga caggcggttt taaagaaagt 300
agtgtaatcg gacaaggcgg tttcggatgc gtttacaagg gttgtttgga caataacgtt 360
aaagcagcgg tcaagaagat cgagaacgtt agccaagaag caaaacgaga atttcagaat 420
gaagttgact tgttgagcaa gatccatcac tcgaacgtta tatcattgtt gggctctgca 480
agcgaaatca actcgagttt catcgtttat gagcttatgg agaaaggatc attagatgaa 540
cagttacatg ggccttctcg tggatcagct ctaacatggc acatgcgtat gaagattgct 600
cttgatacag ctagaggact agagtatctc catgagcatt gtcgtccacc agttatccac 660
agagatttga aatcttcgaa tattcttctt gattcttcct tcaacgccaa gatttcagat 720
ttcggttttg ctgtatcgct ggatgaacat ggcaagaaca acattaaact ctctgggaca 780
cttggttatg ttgccccgga atacctcctt gacggaaaac tgacggataa gagtgatgtt 840
tatgcatttg gggtagttct gcttgaactc ttgttgggta gacgaccagt tgaaaaatta 900
actccagctc aatgccaatc tcttgtaact tgggcaatgc cacaacttac cgatagatcc 960
aagcttccaa acattgtgga tgccgttata aaagatacaa tggatctcaa acacttatac 1020
caggtagcag ccatggctgt gttgtgcgtg cagccagaac caagttaccg gccgttgata 1080
accgatgttc ttcactcact tgttccactg gttccggtag agctaggagg gactctccgg 1140
ttaacaagat gattcacaga 1160
<210> 6
<211> 383
<212> PRT
<213> 拟南芥
<400> 6
Met Gly Ser Gly Glu Glu Asp Arg Phe Asp Ala His Lys Lys Leu Leu
1 5 10 15
Ile Gly Leu Ile Ile Ser Phe Ser Ser Leu Gly Leu Ile Ile Leu Phe
20 25 30
Cys Phe Gly Phe Trp Val Tyr Arg Lys Asn Gln Ser Pro Lys Ser Ile
35 40 45
Asn Asn Ser Asp Ser Glu Ser Gly Asn Ser Phe Ser Leu Leu Met Arg
50 55 60
Arg Leu Gly Ser Ile Lys Thr Gln Arg Arg Thr Ser Ile Gln Lys Gly
65 70 75 80
Tyr Val Gln Phe Phe Asp Ile Lys Thr Leu Glu Lys Ala Thr Gly Gly
85 90 95
Phe Lys Glu Ser Ser Val Ile Gly Gln Gly Gly Phe Gly Cys Val Tyr
100 105 110
Lys Gly Cys Leu Asp Asn Asn Val Lys Ala Ala Val Lys Lys Ile Glu
115 120 125
Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val Asp Leu
130 135 140
Leu Ser Lys Ile His His Ser Asn Val Ile Ser Leu Leu Gly Ser Ala
145 150 155 160
Ser Glu Ile Asn Ser Ser Phe Ile Val Tyr Glu Leu Met Glu Lys Gly
165 170 175
Ser Leu Asp Glu Gln Leu His Gly Pro Ser Arg Gly Ser Ala Leu Thr
180 185 190
Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu Glu
195 200 205
Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp Leu Lys
210 215 220
Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile Ser Asp
225 230 235 240
Phe Gly Phe Ala Val Ser Leu Asp Glu His Gly Lys Asn Asn Ile Lys
245 250 255
Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly
260 265 270
Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu
275 280 285
Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Thr Pro Ala Gln
290 295 300
Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser
305 310 315 320
Lys Leu Pro Asn Ile Val Asp Ala Val Ile Lys Asp Thr Met Asp Leu
325 330 335
Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val Gln Pro
340 345 350
Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Val
355 360 365
Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr Arg
370 375 380
<210> 7
<211> 1160
<212> DNA
<213> 拟南芥
<400> 7
atgggaagtg gtgaagaaga tagatttgat gctcataaga aacttctgat tggtctcata 60
atcagtttct cttctcttgg ccttataatc ttgttctgtt ttggcttttg ggtttatcgc 120
aagaaccaat ctccaaaatc catcaacaac tcagattctg agagtgggaa ttcattttcc 180
ttgttaatga gacgacttgg ctcgattaaa actcagagaa gaacttctat ccaaaagggt 240
tacgtgcaat ttttcgatat caagaccctc gagaaagcga caggcggttt taaagaaagt 300
agtgtaatcg gacaaggcgg tttcggatgc gtttacaagg gttgtttgga caataacgtt 360
aaagcagcgg tcaagaagat cgagaacgtt agccaagaag caaaacgaga atttcagaat 420
gaagttgact tgttgagcaa gatccatcac tcgaacgtta tatcattgtt gggctctgca 480
agcgaaatca actcgagttt catcgtttat gagcttatgg agaaaggatc attagatgaa 540
cagttacatg ggccttctcg tggatcagct ctaacatggc acatgcgtat gaagattgct 600
cttgatacag ctagaggact agagtatctc catgagcatt gtcgtccacc agttatccac 660
agagatttga aatcttcgaa tattcttctt gattcttcct tcaacgccaa gatttcagat 720
ttcggtcttg ctgtatcgct ggatgaacat ggcaagaaca acattaaact ctctgggaca 780
cttggttatg ttgccccgga atacctcctt gacggaaaac tgacggataa gagtgatgtt 840
tatgcatttg gggtagttct gcttgaactc ttgttgggta gacgaccagt tgaaaaatta 900
actccagctc aatgccaatc tcttgtaact tgggcaatgc cacaacttac cgatagatcc 960
aagcttccaa acattgtgga tgccgttata aaagatacaa tggatctcaa acacttatac 1020
caggtagcag ccatggctgt gttgtgcgtg cagccagaac caagttaccg gccgttgata 1080
accgatgttc ttcactcact tgttccactg gttccggtag agctaggagg gactctccgg 1140
ttaacaagat gattcacaga 1160
<210> 8
<211> 383
<212> PRT
<213> 拟南芥
<400> 8
Met Gly Ser Gly Glu Glu Asp Arg Phe Asp Ala His Lys Lys Leu Leu
1 5 10 15
Ile Gly Leu Ile Ile Ser Phe Ser Ser Leu Gly Leu Ile Ile Leu Phe
20 25 30
Cys Phe Gly Phe Trp Val Tyr Arg Lys Asn Gln Ser Pro Lys Ser Ile
35 40 45
Asn Asn Ser Asp Ser Glu Ser Gly Asn Ser Phe Ser Leu Leu Met Arg
50 55 60
Arg Leu Gly Ser Ile Lys Thr Gln Arg Arg Thr Ser Ile Gln Lys Gly
65 70 75 80
Tyr Val Gln Phe Phe Asp Ile Lys Thr Leu Glu Lys Ala Thr Gly Gly
85 90 95
Phe Lys Glu Ser Ser Val Ile Gly Gln Gly Gly Phe Gly Cys Val Tyr
100 105 110
Lys Gly Cys Leu Asp Asn Asn Val Lys Ala Ala Val Lys Lys Ile Glu
115 120 125
Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val Asp Leu
130 135 140
Leu Ser Lys Ile His His Ser Asn Val Ile Ser Leu Leu Gly Ser Ala
145 150 155 160
Ser Glu Ile Asn Ser Ser Phe Ile Val Tyr Glu Leu Met Glu Lys Gly
165 170 175
Ser Leu Asp Glu Gln Leu His Gly Pro Ser Arg Gly Ser Ala Leu Thr
180 185 190
Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu Glu
195 200 205
Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp Leu Lys
210 215 220
Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile Ser Asp
225 230 235 240
Phe Gly Leu Ala Val Ser Leu Asp Glu His Gly Lys Asn Asn Ile Lys
245 250 255
Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly
260 265 270
Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu
275 280 285
Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Thr Pro Ala Gln
290 295 300
Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser
305 310 315 320
Lys Leu Pro Asn Ile Val Asp Ala Val Ile Lys Asp Thr Met Asp Leu
325 330 335
Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val Gln Pro
340 345 350
Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Val
355 360 365
Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr Arg
370 375 380
<210> 9
<211> 1542
<212> DNA
<213> 拟南芥
<400> 9
atcaaaaact tttcttttct tagcaaaaaa aacaaaaaaa tgagagagct tcttcttctt 60
cttcttcttc attttcagtc tctaattctt ttgatgatct tcatcactgt ctctgcttct 120
tctgcttcaa atccttcttt agctcctgtt tactcttcca tggctacatt ctctcctcga 180
atccaaatgg gaagtggtga agaagataga tttgatgctc ataagaaact tctgattggt 240
ctcataatca gtttctcttc tcttggcctt ataatcttgt tctgttttgg cttttgggtt 300
tatcgcaaga accaatctcc aaaatccatc aacaactcag attctgagag tgggaattca 360
ttttccttgt taatgagacg acttggctcg attaaaactc agagaagaac ttctatccaa 420
aagggttacg tgcaattttt cgatatcaag accctcgaga aagcgacagg cggttttaaa 480
gaaagtagtg taatcggaca aggcggtttc ggatgcgttt acaagggttg tttggacaat 540
aacgttaaag cagcggtcaa gaagatcgag aacgttagcc aagaagcaaa acgagaattt 600
cagaatgaag ttgacttgtt gagcaagatc catcactcga acgttatatc attgttgggc 660
tctgcaagcg aaatcaactc gagtttcatc gtttatgagc ttatggagaa aggatcatta 720
gatgaacagt tacatgggcc ttctcgtgga tcagctctaa catggcacat gcgtatgaag 780
attgctcttg atacagctag aggactagag tatctccatg agcattgtcg tccaccagtt 840
atccacagag atttgaaatc ttcgaatatt cttcttgatt cttccttcaa cgccaagatt 900
tcagatttcg gtcttgctgt atcgctggat gaacatggca agaacaacat taaactctct 960
gggacacttg gttatgttgc cccggaatac ctccttgacg gaaaactgac ggataagagt 1020
gatgtttatg catttggggt agttctgctt gaactcttgt tgggtagacg accagttgaa 1080
aaattaactc cagctcaatg ccaatctctt gtaacttggg caatgccaca acttaccgat 1140
agatccaagc ttccaaacat tgtggatgcc gttataaaag atacaatgga tctcaaacac 1200
ttataccagg tagcagccat ggctgtgttg tgcgtgcagc cagaaccaag ttaccggccg 1260
ttgataaccg atgttcttca ctcacttgtt ccactggttc cggtagagct aggagggact 1320
ctccggttaa caagatgatt cacagaaaca cgccaaaaga aatccaaagc catttagatg 1380
attttctttt atcctttgcc tttatatttt tttgtatagg gttatgatcc actcatctga 1440
aagtttgggg gtaagaatgt gagaatataa gttttcaggg ttgttgagtt ctatataatt 1500
atatttgttt ctttttattg tcaaatataa ttatattttt gt 1542
<210> 10
<211> 1309
<212> DNA
<213> 拟南芥
<400> 10
aaaatgagag agcttcttct tcttcttctt cttcattttc agtctctaat tcttttgatg 60
atcttcatca ctgtctctgc ttcttctgct tcaaatcctt ctttagctcc tgtttactct 120
tccatggcta cattctctcc tcgaatccaa atgggaagtg gtgaagaaga tagatttgat 180
gctcataaga aacttctgat tggtctcata atcagtttct cttctcttgg ccttataatc 240
ttgttctgtt ttggcttttg ggtttatcgc aagaaccaat ctccaaaatc catcaacaac 300
tcagattctg agagtgggaa ttcattttcc ttgttaatga gacgacttgg ctcgattaaa 360
actcagagaa gaacttctat ccaaaagggt tacgtgcaat ttttcgatat caagaccctc 420
gagaaagcga caggcggttt taaagaaagt agtgtaatcg gacaaggcgg tttcggatgc 480
gtttacaagg gttgtttgga caataacgtt aaagcagcgg tcaagaagat cgagaacgtt 540
agccaagaag caaaacgaga atttcagaat gaagttgact tgttgagcaa gatccatcac 600
tcgaacgtta tatcattgtt gggctctgca agcgaaatca actcgagttt catcgtttat 660
gagcttatgg agaaaggatc attagatgaa cagttacatg ggccttctcg tggatcagct 720
ctaacatggc acatgcgtat gaagattgct cttgatacag ctagaggact agagtatctc 780
catgagcatt gtcgtccacc agttatccac agagatttga aatcttcgaa tattcttctt 840
gattcttcct tcaacgccaa gatttcagat ttcggtcttg ctgtatcgct ggatgaacat 900
ggcaagaaca acattaaact ctctgggaca cttggttatg ttgccccgga atacctcctt 960
gacggaaaac tgacggataa gagtgatgtt tatgcatttg gggtagttct gcttgaactc 1020
ttgttgggta gacgaccagt tgaaaaatta actccagctc aatgccaatc tcttgtaact 1080
tgggcaatgc cacaacttac cgatagatcc aagcttccaa acattgtgga tgccgttata 1140
aaagatacaa tggatctcaa acacttatac caggtagcag ccatggctgt gttgtgcgtg 1200
cagccagaac caagttaccg gccgttgata accgatgttc ttcactcact tgttccactg 1260
gttccggtag agctaggagg gactctccgg ttaacaagat gattcacag 1309
<210> 11
<211> 1177
<212> DNA
<213> 拟南芥
<400> 11
tctgtgtcag gaatccaaat gggaagtggt gaagaagata gatttgatgc tcataagaaa 60
cttctgattg gtctcataat cagtttctct tctcttggcc ttataatctt gttctgtttt 120
ggcttttggg tttatcgcaa gaaccaatct ccaaaatcca tcaacaactc agattctgag 180
agtgggaatt cattttcctt gttaatgaga cgacttggct cgattaaaac tcagagaaga 240
acttctatcc aaaagggtta cgtgcaattt ttcgatatca agaccctcga gaaagcgaca 300
ggcggtttta aagaaagtag tgtaatcgga caaggcggtt tcggatgcgt ttacaagggt 360
tgtttggaca ataacgttaa agcagcggtc aagaagatcg agaacgttag ccaagaagca 420
aaacgagaat ttcagaatga agttgacttg ttgagcaaga tccatcactc gaacgttata 480
tcattgttgg gctctgcaag cgaaatcaac tcgagtttca tcgtttatga gcttatggag 540
aaaggatcat tagatgaaca gttacatggg ccttctcgtg gatcagctct aacatggcac 600
atgcgtatga agattgctct tgatacagct agaggactag agtatctcca tgagcattgt 660
cgtccaccag ttatccacag agatttgaaa tcttcgaata ttcttcttga ttcttccttc 720
aacgccaaga tttcagattt cggtcttgct gtatcgctgg atgaacatgg caagaacaac 780
attaaactct ctgggacact tggttatgtt gccccggaat acctccttga cggaaaactg 840
acggataaga gtgatgttta tgcatttggg gtagttctgc ttgaactctt gttgggtaga 900
cgaccagttg aaaaattaac tccagctcaa tgccaatctc ttgtaacttg ggcaatgcca 960
caacttaccg atagatccaa gcttccaaac attgtggatg ccgttataaa agatacaatg 1020
gatctcaaac acttatacca ggtagcagcc atggctgtgt tgtgcgtgca gccagaacca 1080
agttaccggc cgttgataac cgatgttctt cactcacttg ttccactggt tccggtagag 1140
ctaggaggga ctctccggtt aacaagatga ttcacag 1177
<210> 12
<211> 154
<212> DNA
<213> 拟南芥
<400> 12
tcgcaagaac caatctccaa aatccatcaa caactcagat tctgagagtg ggaattcatt 60
ttccttgtta atgagacgac ttggctcgat taaaactcag agaagaactt ctatccaaaa 120
gggttacgtg caatttttcg atatcaagac cctc 154
<210> 13
<211> 288
<212> DNA
<213> 拟南芥
<400> 13
tctgtgtcag gaatccaaat gggaagtggt gaagaagata gatttgatgc tcataagaaa 60
cttctgattg gtctcataat cagtttctct tctcttggcc ttataatctt gttctgtttt 120
ggcttttggg tttatcgcaa gaaccaatct ccaaaatcca tcaacaactc agattctgag 180
agtgggaatt cattttcctt gttaatgaga cgacttggct cgattaaaac tcagagaaga 240
acttctatcc aaaagggtta cgtgcaattt ttcgatatca agaccctc 288
<210> 14
<211> 1510
<212> DNA
<213> 拟南芥
<400> 14
tgttaaaagc gatttataat ttacaccgtt ttggtgtata tttctatcta tccttttaca 60
agacctatat atgttatgtt atggtggtgt actattttaa gtgagcgaca tagtattttc 120
ttcatatagc taattaatca acaacaattt cccaacttac aactatttgc gtactttaaa 180
cttatattga aagagaacta caaaattatt tttttgtaca agagaattat ggtcttcgga 240
tcaataattt ctctagatat aatatgtaaa gccaacccta taatttgtaa aatccatgat 300
ttgatataat tttcttttaa aattgtgaat tggcagacaa aaacaacatt acattttgat 360
ttaaattcat aactttgact tgctaaggaa acaccatgat tcattttttg tcatttgtta 420
catcatcact agaaatattt gatctaactt tattatgata atagactaca tactacatat 480
gcagttacga ttttaaatac tacatattta agcgtgttta aactgtaacc atatcatata 540
aaatgacata tctaaaagtg attttcaata ttttgatatg atatgtgttg tagcacggat 600
aatgatctaa tttttaagta ataagcttgt tcattacaaa agagaagaaa gtagtattgg 660
gccatgatta tgtaaggaca aaataggaag atgtggaaga agccattcga gggttttatt 720
acaaaaacag agtatataat tggtcataat gttttattca cttaatttaa cattattgca 780
ttatattttc atgaacacat atttctttaa ctaaaaatat acacatattt cttattgtag 840
atgaagtgaa aagaacaata tttgggttca catctatggg tgaatccttt taatcacccc 900
ctaaaataaa aaaggtgcca tatttctatt tttagagaaa gatatagagc accattggag 960
tggttttgct ccaaatatag agtttagaga aatatataat acaccattgg agatgctcta 1020
aaatgaattt atttatttat ttagatggaa gattctaatt ggttagaaaa agaggaagtg 1080
aataatagga ttcacctata agagtgaacc caagtatttt taagagataa tgtgtaaagt 1140
aaatagatgg tcattgtgtg aattatgaat agaaccatgg ttttccattt ttaattgctt 1200
aacatagggt aatcaacaat ggggtttaat atgtcaatag acaatagtaa agaaagtatt 1260
tgatctatcc caaatctttc ttcgttcgtt agttcatcac tttctttctt tttggttata 1320
ttaatggtag agaactaaaa attcaacttt ttattcaaaa gctccctttc tctttccctc 1380
ctttatttgc cataaaagtg atttcaagaa gacagcgaga gagaaagtga tagttcgttc 1440
actcttcgct ttctcaagaa tttcaaaaca ccaaaaaagt ctttagattg aatttcatca 1500
aaaacttttc 1510
<210> 15
<211> 157
<212> DNA
<213> 拟南芥
<400> 15
agacaagaaa aaaggaaaca aaattttatg aaagagatct ccattagaga aagagagagc 60
gagagagaga ttaatcttgg aagagcaatc tcacattctc acactgctct tagaaaatct 120
ctctttcacc attaaaaatc ccaaagagtc tggagaa 157
<210> 16
<211> 1257
<212> DNA
<213> 拟南芥
<400> 16
atgggaaaga ttcttcatct tcttcttctt cttcttaagg tctctgttct tgaattcatc 60
attagtgttt ctgcttttac ttcacctgct tcacagcctt ctctttctcc tgtttacact 120
tccatggctt ccttttctcc agggatccac atgggcaaag gccaagaaca caagttagat 180
gcacacaaga aacttctaat cgctctcata atcacctcat cttctctagg actaatactt 240
gtatcttgtt tatgcttttg ggtttattgg tctaagaaat ctcccaaaaa caccaagaac 300
tcaggtgaga gtaggatttc attatccaag aagggctttg tgcagtcctt cgattacaag 360
acactagaga aagcaacagg cggtttcaaa gacggtaatc ttataggacg aggcgggttc 420
ggagatgttt acaaggcctg tttaggcaac aacactctag cagcagtcaa aaagatcgaa 480
aacgttagtc aagaagcaaa acgagaattt cagaatgaag ttgatttgtt gagcaagatt 540
caccacccga acatcatctc attgtttgga tatggaaatg aactcagttc gagttttatc 600
gtctacgagc tgatggaaag cggatcattg gatacacagt tacacggacc ttctcgggga 660
tcggctttaa catggcacat gcggatgaag attgctcttg atacagcaag agctgttgag 720
tatctccacg agcgttgtcg tcctccggtt atccacagag atcttaaatc gtcaaatatt 780
ctccttgatt cttccttcaa cgccaagatt tcggattttg gtcttgcggt aatggtgggg 840
gctcacggca aaaacaacat taaactatca ggaacacttg gttatgttgc tccagaatat 900
ctcctagatg gaaaattgac ggataagagt gatgtttatg cgtttggtgt ggttttactt 960
gaactcttgt taggaagacg gccggttgag aaattgagtt cggttcagtg tcaatctctt 1020
gtcacttggg caatgcccca acttacggat agatcaaagc ttccgaaaat cgtggatccg 1080
gttatcaaag atacaatgga tcataagcac ttataccagg tggcagccgt ggcagtgctt 1140
tgtgtacaac cagaaccgag ttatcgaccg ttgataaccg atgttcttca ctcactagtt 1200
ccattggttc cggtagagct aggagggact ctccggttaa taccatcatc gtcttga 1257
<210> 17
<211> 418
<212> PRT
<213> 拟南芥
<400> 17
Met Gly Lys Ile Leu His Leu Leu Leu Leu Leu Leu Lys Val Ser Val
1 5 10 15
Leu Glu Phe Ile Ile Ser Val Ser Ala Phe Thr Ser Pro Ala Ser Gln
20 25 30
Pro Ser Leu Ser Pro Val Tyr Thr Ser Met Ala Ser Phe Ser Pro Gly
35 40 45
Ile His Met Gly Lys Gly Gln Glu His Lys Leu Asp Ala His Lys Lys
50 55 60
Leu Leu Ile Ala Leu Ile Ile Thr Ser Ser Ser Leu Gly Leu Ile Leu
65 70 75 80
Val Ser Cys Leu Cys Phe Trp Val Tyr Trp Ser Lys Lys Ser Pro Lys
85 90 95
Asn Thr Lys Asn Ser Gly Glu Ser Arg Ile Ser Leu Ser Lys Lys Gly
100 105 110
Phe Val Gln Ser Phe Asp Tyr Lys Thr Leu Glu Lys Ala Thr Gly Gly
115 120 125
Phe Lys Asp Gly Asn Leu Ile Gly Arg Gly Gly Phe Gly Asp Val Tyr
130 135 140
Lys Ala Cys Leu Gly Asn Asn Thr Leu Ala Ala Val Lys Lys Ile Glu
145 150 155 160
Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val Asp Leu
165 170 175
Leu Ser Lys Ile His His Pro Asn Ile Ile Ser Leu Phe Gly Tyr Gly
180 185 190
Asn Glu Leu Ser Ser Ser Phe Ile Val Tyr Glu Leu Met Glu Ser Gly
195 200 205
Ser Leu Asp Thr Gln Leu His Gly Pro Ser Arg Gly Ser Ala Leu Thr
210 215 220
Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Ala Val Glu
225 230 235 240
Tyr Leu His Glu Arg Cys Arg Pro Pro Val Ile His Arg Asp Leu Lys
245 250 255
Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile Ser Asp
260 265 270
Phe Gly Leu Ala Val Met Val Gly Ala His Gly Lys Asn Asn Ile Lys
275 280 285
Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly
290 295 300
Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu
305 310 315 320
Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Ser Ser Val Gln
325 330 335
Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser
340 345 350
Lys Leu Pro Lys Ile Val Asp Pro Val Ile Lys Asp Thr Met Asp His
355 360 365
Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro
370 375 380
Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Val
385 390 395 400
Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Ile Pro Ser
405 410 415
Ser Ser
<210> 18
<211> 1302
<212> DNA
<213> 拟南芥
<400> 18
atgaagcaaa ttgttataac agctcttgtt ttactacaag cttatgttct tcatcaatcc 60
acatgtgtta tgtcccttac tacacaagaa tctccttctc ctcaaccttc tgctttcact 120
cccgccttat ctcctgatta tcaacagaga gagaaggaat tgcataaaca agagagtaac 180
aacatgagac tggttatttc actagcagct acattttcct tagttggtat aatcttactt 240
tgctctctgc tttattggtt ttgccatagg agaagaaacc tcaagagctc aggttgtggg 300
tgtagtggaa tcacattctt gaatcggttt agtcgctcaa aaacattaga caagagaact 360
acaaagcagg gaacagtgtc attgatcgat tacaatatac tagaagaagg aactagtggt 420
ttcaaggaga gtaacatttt gggtcaaggt ggatttggat gtgtatattc tgccacatta 480
gagaacaaca tttcagctgc ggttaagaag ctagactgtg ccaatgaaga tgcagcaaag 540
gaatttaaga gtgaggttga gatattgagt aagctccagc acccgaatat aatatccctt 600
ttgggttata gcacgaatga tactgcgaga ttcattgtct atgagctgat gccaaacgtt 660
tctctggaat ctcatttaca cggatcttct cagggttcgg cgatcacatg gcctatgagg 720
atgaagattg ctcttgatgt aacaagggga ttagaatatt tgcatgaaca ttgtcatcca 780
gcaatcattc acagggactt gaaatcatcc aacatcttat tagatagcaa tttcaatgct 840
aagatttcag attttggtct agctgttgtt gatgggccaa agaacaagaa ccataaactt 900
tccgggacag ttggctacgt tgcaccagag tatcttctca acggccaatt gacagaaaag 960
agcgacgtgt atgcttttgg agtagtgtta ttagagcttt tactcgggaa aaaacctgtg 1020
gagaaactag ctcccggtga atgccaatcc atcatcactt gggcaatgcc ttatctcact 1080
gatagaacca agttaccaag cgtcatagat cctgcgatta aagatacgat ggacttgaaa 1140
cacctttacc aggtagcggc agtggcgatt ttgtgcgtgc agccagaacc gagttataga 1200
ccgttgatta cagacgtctt gcattctctt atacctttgg ttccaatgga acttggtgga 1260
accttaaaaa ccatcaaatg tgcttcaatg gatcactgtt aa 1302
<210> 19
<211> 433
<212> PRT
<213> 拟南芥
<400> 19
Met Lys Gln Ile Val Ile Thr Ala Leu Val Leu Leu Gln Ala Tyr Val
1 5 10 15
Leu His Gln Ser Thr Cys Val Met Ser Leu Thr Thr Gln Glu Ser Pro
20 25 30
Ser Pro Gln Pro Ser Ala Phe Thr Pro Ala Leu Ser Pro Asp Tyr Gln
35 40 45
Gln Arg Glu Lys Glu Leu His Lys Gln Glu Ser Asn Asn Met Arg Leu
50 55 60
Val Ile Ser Leu Ala Ala Thr Phe Ser Leu Val Gly Ile Ile Leu Leu
65 70 75 80
Cys Ser Leu Leu Tyr Trp Phe Cys His Arg Arg Arg Asn Leu Lys Ser
85 90 95
Ser Gly Cys Gly Cys Ser Gly Ile Thr Phe Leu Asn Arg Phe Ser Arg
100 105 110
Ser Lys Thr Leu Asp Lys Arg Thr Thr Lys Gln Gly Thr Val Ser Leu
115 120 125
Ile Asp Tyr Asn Ile Leu Glu Glu Gly Thr Ser Gly Phe Lys Glu Ser
130 135 140
Asn Ile Leu Gly Gln Gly Gly Phe Gly Cys Val Tyr Ser Ala Thr Leu
145 150 155 160
Glu Asn Asn Ile Ser Ala Ala Val Lys Lys Leu Asp Cys Ala Asn Glu
165 170 175
Asp Ala Ala Lys Glu Phe Lys Ser Glu Val Glu Ile Leu Ser Lys Leu
180 185 190
Gln His Pro Asn Ile Ile Ser Leu Leu Gly Tyr Ser Thr Asn Asp Thr
195 200 205
Ala Arg Phe Ile Val Tyr Glu Leu Met Pro Asn Val Ser Leu Glu Ser
210 215 220
His Leu His Gly Ser Ser Gln Gly Ser Ala Ile Thr Trp Pro Met Arg
225 230 235 240
Met Lys Ile Ala Leu Asp Val Thr Arg Gly Leu Glu Tyr Leu His Glu
245 250 255
His Cys His Pro Ala Ile Ile His Arg Asp Leu Lys Ser Ser Asn Ile
260 265 270
Leu Leu Asp Ser Asn Phe Asn Ala Lys Ile Ser Asp Phe Gly Leu Ala
275 280 285
Val Val Asp Gly Pro Lys Asn Lys Asn His Lys Leu Ser Gly Thr Val
290 295 300
Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asn Gly Gln Leu Thr Glu Lys
305 310 315 320
Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Gly
325 330 335
Lys Lys Pro Val Glu Lys Leu Ala Pro Gly Glu Cys Gln Ser Ile Ile
340 345 350
Thr Trp Ala Met Pro Tyr Leu Thr Asp Arg Thr Lys Leu Pro Ser Val
355 360 365
Ile Asp Pro Ala Ile Lys Asp Thr Met Asp Leu Lys His Leu Tyr Gln
370 375 380
Val Ala Ala Val Ala Ile Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg
385 390 395 400
Pro Leu Ile Thr Asp Val Leu His Ser Leu Ile Pro Leu Val Pro Met
405 410 415
Glu Leu Gly Gly Thr Leu Lys Thr Ile Lys Cys Ala Ser Met Asp His
420 425 430
Cys
<210> 20
<211> 2016
<212> DNA
<213> 拟南芥
<400> 20
atgaagacta tgtccaaatc gtctttgcgt ttgcattttc tctcgctact cttactttgt 60
tgtgtctccc cttcaagctt tgtcattata agattcatta cacataatca ttttgatggt 120
ctagtacgtt gtcatcccca caagtttcaa gcccttacgc agttcaagaa cgagtttgat 180
acccgccgtt gcaaccacag taactacttt aatggaatct ggtgtgataa ctccaaggtg 240
cggtcacaaa gctacgacta cgggactgtc tcagtggaac tctcaaatca aacagtagcc 300
tcttccagtt tcatcatctt cgctaccttg atctctctca caacaacttc acctcctctt 360
ccctcccttc cgagtttgtt tcccactttg cggaatctaa ccaagctcac agttttagac 420
ctttctcata atcacttctc cggaactttg aagcccaaca atagcctctt tgagttacac 480
caccttcgtt accttaatct cgaggtcaac aacttcagtt cctcactccc ttccgagttt 540
ggctatctca acaatttaca gcactgtggc ctcaaagagt tcccaaacat attcaagacc 600
cttaaaaaaa tggaggctat agacgtatcc aacaatagaa tcaacgggaa aatccctgag 660
tggttatgga gccttcctct tcttcattta gtgaatattt taaataattc ttttgacggt 720
ttcgaaggat caacggaagt tttagtaaat tcatcggttc ggatattact tttggagtca 780
aacaactttg aaggagcact tcctagtcta ccacactcta tcaacgcctt ctccgcgggt 840
cataacaatt tcactggaga gatacctctt tcaatctgca ccagaacctc acttggtgtc 900
cttgatctaa actacaacaa cctcattggt ccggtttctc aatgtttgag taatgtcacg 960
tttgtaaatc tccggaaaaa caatttggaa ggaactattc ctgagacttt cattgtcggt 1020
tcctcgataa ggacacttga tgttggatac aatcgactaa cgggaaagct tccaaggtct 1080
cttttgaact gctcatctct agagtttcta agcgttgaca acaacagaat caaagacaca 1140
tttcctttct ggctcaaggc tttaccaaag ttacaagtcc ttaccctaag ttcaaacaag 1200
ttttatggtc ctatatctcc tcctcatcaa ggtcctctcg ggtttccaga gctgagaata 1260
cttgagatat ctgataataa gtttactgga agcttgtcgt caagatactt tgagaattgg 1320
aaagcatcgt ccgccatgat gaatgaatat gtgggtttat atatggttta cgagaagaat 1380
ccttatggtg tagttgtcta tacctttttg gatcgtatag atttgaaata caaaggtcta 1440
aacatggagc aagcgagggt tctcacttcc tacagcgcca ttgatttttc tagaaatcta 1500
cttgaaggaa atattcctga atccattgga cttttaaagg cattgattgc actaaactta 1560
tcgaacaacg cttttacagg ccatattcct cagtctttgg caaatcttaa ggagctccag 1620
tcactagaca tgtctaggaa ccaactctca gggactattc ctaatggact caagcaactc 1680
tcgtttttgg cttacataag tgtgtctcat aaccaactca agggtgaaat accacaagga 1740
acacaaatta ctgggcaatt gaaatcttcc tttgaaggga atgtaggact ttgtggtctt 1800
cctctcgagg aaaggtgctt cgacaatagt gcatctccaa cgcagcacca caagcaagac 1860
gaagaagaag aagaagaaca agtgttacac tggaaagcgg tggcaatggg gtatggacct 1920
ggattgttgg ttggatttgc aattgcatat gtcattgctt catacaagcc ggagtggcta 1980
accaagataa ttggtccgaa taagcgcaga aactag 2016
<210> 21
<211> 671
<212> PRT
<213> 拟南芥
<400> 21
Met Lys Thr Met Ser Lys Ser Ser Leu Arg Leu His Phe Leu Ser Leu
1 5 10 15
Leu Leu Leu Cys Cys Val Ser Pro Ser Ser Phe Val Ile Ile Arg Phe
20 25 30
Ile Thr His Asn His Phe Asp Gly Leu Val Arg Cys His Pro His Lys
35 40 45
Phe Gln Ala Leu Thr Gln Phe Lys Asn Glu Phe Asp Thr Arg Arg Cys
50 55 60
Asn His Ser Asn Tyr Phe Asn Gly Ile Trp Cys Asp Asn Ser Lys Val
65 70 75 80
Arg Ser Gln Ser Tyr Asp Tyr Gly Thr Val Ser Val Glu Leu Ser Asn
85 90 95
Gln Thr Val Ala Ser Ser Ser Phe Ile Ile Phe Ala Thr Leu Ile Ser
100 105 110
Leu Thr Thr Thr Ser Pro Pro Leu Pro Ser Leu Pro Ser Leu Phe Pro
115 120 125
Thr Leu Arg Asn Leu Thr Lys Leu Thr Val Leu Asp Leu Ser His Asn
130 135 140
His Phe Ser Gly Thr Leu Lys Pro Asn Asn Ser Leu Phe Glu Leu His
145 150 155 160
His Leu Arg Tyr Leu Asn Leu Glu Val Asn Asn Phe Ser Ser Ser Leu
165 170 175
Pro Ser Glu Phe Gly Tyr Leu Asn Asn Leu Gln His Cys Gly Leu Lys
180 185 190
Glu Phe Pro Asn Ile Phe Lys Thr Leu Lys Lys Met Glu Ala Ile Asp
195 200 205
Val Ser Asn Asn Arg Ile Asn Gly Lys Ile Pro Glu Trp Leu Trp Ser
210 215 220
Leu Pro Leu Leu His Leu Val Asn Ile Leu Asn Asn Ser Phe Asp Gly
225 230 235 240
Phe Glu Gly Ser Thr Glu Val Leu Val Asn Ser Ser Val Arg Ile Leu
245 250 255
Leu Leu Glu Ser Asn Asn Phe Glu Gly Ala Leu Pro Ser Leu Pro His
260 265 270
Ser Ile Asn Ala Phe Ser Ala Gly His Asn Asn Phe Thr Gly Glu Ile
275 280 285
Pro Leu Ser Ile Cys Thr Arg Thr Ser Leu Gly Val Leu Asp Leu Asn
290 295 300
Tyr Asn Asn Leu Ile Gly Pro Val Ser Gln Cys Leu Ser Asn Val Thr
305 310 315 320
Phe Val Asn Leu Arg Lys Asn Asn Leu Glu Gly Thr Ile Pro Glu Thr
325 330 335
Phe Ile Val Gly Ser Ser Ile Arg Thr Leu Asp Val Gly Tyr Asn Arg
340 345 350
Leu Thr Gly Lys Leu Pro Arg Ser Leu Leu Asn Cys Ser Ser Leu Glu
355 360 365
Phe Leu Ser Val Asp Asn Asn Arg Ile Lys Asp Thr Phe Pro Phe Trp
370 375 380
Leu Lys Ala Leu Pro Lys Leu Gln Val Leu Thr Leu Ser Ser Asn Lys
385 390 395 400
Phe Tyr Gly Pro Ile Ser Pro Pro His Gln Gly Pro Leu Gly Phe Pro
405 410 415
Glu Leu Arg Ile Leu Glu Ile Ser Asp Asn Lys Phe Thr Gly Ser Leu
420 425 430
Ser Ser Arg Tyr Phe Glu Asn Trp Lys Ala Ser Ser Ala Met Met Asn
435 440 445
Glu Tyr Val Gly Leu Tyr Met Val Tyr Glu Lys Asn Pro Tyr Gly Val
450 455 460
Val Val Tyr Thr Phe Leu Asp Arg Ile Asp Leu Lys Tyr Lys Gly Leu
465 470 475 480
Asn Met Glu Gln Ala Arg Val Leu Thr Ser Tyr Ser Ala Ile Asp Phe
485 490 495
Ser Arg Asn Leu Leu Glu Gly Asn Ile Pro Glu Ser Ile Gly Leu Leu
500 505 510
Lys Ala Leu Ile Ala Leu Asn Leu Ser Asn Asn Ala Phe Thr Gly His
515 520 525
Ile Pro Gln Ser Leu Ala Asn Leu Lys Glu Leu Gln Ser Leu Asp Met
530 535 540
Ser Arg Asn Gln Leu Ser Gly Thr Ile Pro Asn Gly Leu Lys Gln Leu
545 550 555 560
Ser Phe Leu Ala Tyr Ile Ser Val Ser His Asn Gln Leu Lys Gly Glu
565 570 575
Ile Pro Gln Gly Thr Gln Ile Thr Gly Gln Leu Lys Ser Ser Phe Glu
580 585 590
Gly Asn Val Gly Leu Cys Gly Leu Pro Leu Glu Glu Arg Cys Phe Asp
595 600 605
Asn Ser Ala Ser Pro Thr Gln His His Lys Gln Asp Glu Glu Glu Glu
610 615 620
Glu Glu Gln Val Leu His Trp Lys Ala Val Ala Met Gly Tyr Gly Pro
625 630 635 640
Gly Leu Leu Val Gly Phe Ala Ile Ala Tyr Val Ile Ala Ser Tyr Lys
645 650 655
Pro Glu Trp Leu Thr Lys Ile Ile Gly Pro Asn Lys Arg Arg Asn
660 665 670
<210> 22
<211> 1662
<212> DNA
<213> 拟南芥
<400> 22
atgacttcct ctcgccgtct tcttcttcct ctcggagcat cgctcactag aggaagattt 60
tcttccgatc aaatccgaaa tggatttcta agaaacttcc gtggattcgc caccgtaact 120
tcgtcggaac cggccttagc caatctggaa gcgaaatatg ccgtagcgtt gccagaatgt 180
tcaacagtag aggacgagat cacgaagatc cgtcatgaat tcgagttagc gaaacagagg 240
tttcttaata tccctgaagc tattaatagt atgccgaaga tgaatcctca agggatatat 300
gtgaataaga atctgagatt ggataatata caagtttatg gatttgatta tgattacact 360
ttggcacatt actcttctca cttacagagt ttgatctatg atcttgccaa gaaacatatg 420
gttaatgagt ttagatatcc tgatgtttgc actcagtttg agtatgatcc tacttttcca 480
atccgtgggt tgtactatga taaactaaaa ggatgcctca tgaaattgga tttcttcggt 540
tcaatcgagc cagatgggtg ttattttggt cgtcgtaagc ttagtaggaa ggaaatagaa 600
agcatgtatg gaacgcggca cataggtcgt gatcaagcga gaggtttggt gggattgatg 660
gatttcttct gttttagcga ggcgtgtctt atagcagaca tggtgcaata ttttgttgac 720
gccaaacttg agtttgatgc ctctaacatc tacaatgatg tcaatcgtgc tattcaacat 780
gtccatagaa gtggattggt tcatagagga attcttgctg atcccaacag atatttgcta 840
aaaaatggtc agcttctacg tttcctgaga atgctaaaag ataaaggaaa gaagcttttt 900
ttgctgacca actctccgta taattttgtt gatggcggaa tgcgctttct aatggaggaa 960
tcttttggct tcggagattc ctggcgagaa ctctttgatg ttgtgattgc taaagcaaat 1020
aaaccagaat tttacacatc tgagcaccct ttccgttgtt atgattcgga gagggataat 1080
ttggcattta caaaagtgga tgcatttgac ccaaagaaag tttattatca tggttgtctt 1140
aaatccttcc ttgaaatcac aaagtggcat ggccctgagg tgatttattt cggagatcac 1200
ttatttagtg atctaagagg gccttcaaaa gctggttggc gaactgctgc cataattcat 1260
gagctcgagc gagagataca gatacaaaat gatgatagct accggtttga gcaggccaag 1320
ttccatatta tccaagagtt actcggtaga tttcacgcga ctgtatcaaa caatcagaga 1380
agtgaagcat gccaatcact tttggatgag ctgaacaatg cgaggcagag agcaagagac 1440
acgatgaaac aaatgttcaa cagatcgttt ggagctacat ttgtcacaga cactggtcaa 1500
gaatcagcat tctcttatca catccaccaa tacgcagacg tttataccag taaacctgag 1560
aactttctgt tataccgacc tgaagcctgg cttcacgttc cttacgatat caagatcatg 1620
ccacatcatg tcaaggttgc ttcaaccctt ttcaaaacct ga 1662
<210> 23
<211> 553
<212> PRT
<213> 拟南芥
<400> 23
Met Thr Ser Ser Arg Arg Leu Leu Leu Pro Leu Gly Ala Ser Leu Thr
1 5 10 15
Arg Gly Arg Phe Ser Ser Asp Gln Ile Arg Asn Gly Phe Leu Arg Asn
20 25 30
Phe Arg Gly Phe Ala Thr Val Thr Ser Ser Glu Pro Ala Leu Ala Asn
35 40 45
Leu Glu Ala Lys Tyr Ala Val Ala Leu Pro Glu Cys Ser Thr Val Glu
50 55 60
Asp Glu Ile Thr Lys Ile Arg His Glu Phe Glu Leu Ala Lys Gln Arg
65 70 75 80
Phe Leu Asn Ile Pro Glu Ala Ile Asn Ser Met Pro Lys Met Asn Pro
85 90 95
Gln Gly Ile Tyr Val Asn Lys Asn Leu Arg Leu Asp Asn Ile Gln Val
100 105 110
Tyr Gly Phe Asp Tyr Asp Tyr Thr Leu Ala His Tyr Ser Ser His Leu
115 120 125
Gln Ser Leu Ile Tyr Asp Leu Ala Lys Lys His Met Val Asn Glu Phe
130 135 140
Arg Tyr Pro Asp Val Cys Thr Gln Phe Glu Tyr Asp Pro Thr Phe Pro
145 150 155 160
Ile Arg Gly Leu Tyr Tyr Asp Lys Leu Lys Gly Cys Leu Met Lys Leu
165 170 175
Asp Phe Phe Gly Ser Ile Glu Pro Asp Gly Cys Tyr Phe Gly Arg Arg
180 185 190
Lys Leu Ser Arg Lys Glu Ile Glu Ser Met Tyr Gly Thr Arg His Ile
195 200 205
Gly Arg Asp Gln Ala Arg Gly Leu Val Gly Leu Met Asp Phe Phe Cys
210 215 220
Phe Ser Glu Ala Cys Leu Ile Ala Asp Met Val Gln Tyr Phe Val Asp
225 230 235 240
Ala Lys Leu Glu Phe Asp Ala Ser Asn Ile Tyr Asn Asp Val Asn Arg
245 250 255
Ala Ile Gln His Val His Arg Ser Gly Leu Val His Arg Gly Ile Leu
260 265 270
Ala Asp Pro Asn Arg Tyr Leu Leu Lys Asn Gly Gln Leu Leu Arg Phe
275 280 285
Leu Arg Met Leu Lys Asp Lys Gly Lys Lys Leu Phe Leu Leu Thr Asn
290 295 300
Ser Pro Tyr Asn Phe Val Asp Gly Gly Met Arg Phe Leu Met Glu Glu
305 310 315 320
Ser Phe Gly Phe Gly Asp Ser Trp Arg Glu Leu Phe Asp Val Val Ile
325 330 335
Ala Lys Ala Asn Lys Pro Glu Phe Tyr Thr Ser Glu His Pro Phe Arg
340 345 350
Cys Tyr Asp Ser Glu Arg Asp Asn Leu Ala Phe Thr Lys Val Asp Ala
355 360 365
Phe Asp Pro Lys Lys Val Tyr Tyr His Gly Cys Leu Lys Ser Phe Leu
370 375 380
Glu Ile Thr Lys Trp His Gly Pro Glu Val Ile Tyr Phe Gly Asp His
385 390 395 400
Leu Phe Ser Asp Leu Arg Gly Pro Ser Lys Ala Gly Trp Arg Thr Ala
405 410 415
Ala Ile Ile His Glu Leu Glu Arg Glu Ile Gln Ile Gln Asn Asp Asp
420 425 430
Ser Tyr Arg Phe Glu Gln Ala Lys Phe His Ile Ile Gln Glu Leu Leu
435 440 445
Gly Arg Phe His Ala Thr Val Ser Asn Asn Gln Arg Ser Glu Ala Cys
450 455 460
Gln Ser Leu Leu Asp Glu Leu Asn Asn Ala Arg Gln Arg Ala Arg Asp
465 470 475 480
Thr Met Lys Gln Met Phe Asn Arg Ser Phe Gly Ala Thr Phe Val Thr
485 490 495
Asp Thr Gly Gln Glu Ser Ala Phe Ser Tyr His Ile His Gln Tyr Ala
500 505 510
Asp Val Tyr Thr Ser Lys Pro Glu Asn Phe Leu Leu Tyr Arg Pro Glu
515 520 525
Ala Trp Leu His Val Pro Tyr Asp Ile Lys Ile Met Pro His His Val
530 535 540
Lys Val Ala Ser Thr Leu Phe Lys Thr
545 550
<210> 24
<211> 1386
<212> DNA
<213> 二穗短柄草
<400> 24
atggagattc cggcggcgcc gccgcctcca ttgccggtgc tgtgctcgta cgtcgtcttc 60
ttgctgctgc tgtcttcgtg ctcactggcc agagggagga tcgcggtttc ttccccgggc 120
ccgtcgcctg tggccgccgc cgttacagcc aatgagaccg cttcatcctc ttcttctccg 180
gtgtttccgg ccgctcctcc cgtcgtgatc acagtggtga ggcaccacca ttaccaccgg 240
gagctggtca tctccgctgt cctcgcctgc gtcgccaccg ccatgatcct cctctccaca 300
ctctacgcct ggacgatgtg gcggcggtct cgccggaccc cccacggcgg caagggccgc 360
ggccggagat cagggatcac actggtgcca atcctgagca agttcaattc agtgaagatg 420
agcaggaagg ggggccttgt gacgatgatc gagtacccgt cgctggaggc ggcgacaggc 480
aagttcggcg agagcaatgt gctcggtgtc ggcggcttcg gttgcgttta taaggcggcg 540
tttgatggcg gtgccaccgc cgccgtgaag aggcttgaag gcggcgggcc ggattgcgag 600
aaggaattcg agaatgagct ggatttgctt ggcaggatca ggcacccaaa catagtgtct 660
ctcctgggct tctgtgtcca tggtggcaat cactacattg tttatgagct catggagaag 720
ggatcattgg agacacagct gcatgggtct tcacatggat ctgctctgag ctggcacgtt 780
cggatgaaga tcgcgctcga tacggcgagg ggattagagt atcttcatga gcactgcaat 840
ccacctgtga tccataggga tctgaaacct tctaatatac ttttagattc agacttcaat 900
gctaagattg cagattttgg ccttgcggtc accggtggga atctcaacaa agggaacctg 960
aagctttccg ggaccttggg ttatgtagcc cctgagtact tattagatgg gaagttgact 1020
gagaagagcg atgtatacgc atttggagta gtgcttctag agctcctgat gggaaggaag 1080
cctgttgaga aaatgtcacc atctcagtgc caatcaattg tgtcatgggc tatgcctcag 1140
ctgaccgaca gatcgaagct ccccaacata attgacctgg tgatcaagga caccatggac 1200
ccaaaacact tgtaccaagt tgcagcagtg gctgttctat gtgtgcagcc cgaaccgagc 1260
tacagaccac tgataacaga tgttctccac tctcttgttc ctctagtgcc tgcggagctc 1320
ggaggaacac tcagggttgc agagccacct tcaccttctc cagaccaaag acattatcct 1380
tgttga 1386
<210> 25
<211> 1302
<212> DNA
<213> 油菜
<400> 25
atgaagaaac tggttcatct tcagtttttg tttcttgtca agatctttgc tactcaattc 60
ctcactcctt cttcatcatc ttttgctgct tcaaatcctt ctatagctcc tgtttacacc 120
tccatgacta ctttctctcc aggaattcaa atgggaagtg gtgaagaaca cagattagat 180
gcacataaga aactcctgat tggtcttata atcagttcct cttctcttgg tatcataatc 240
ttgatttgct ttggcttctg gatgtactgt cgcaagaaag ctcccaaacc catcaagatt 300
ccggatgccg agagtgggac ttcatcattt tcaatgtttg tgaggcggct aagctcaatt 360
aaaactcaca gaacatctag caatcagggt tatgtgcagc gtttcgattc caagacgcta 420
gagaaagcga caggcggttt caaagacagt aatgtaatcg gacagggcgg tttcggatgc 480
gtttacaagg cttctttgga cagcaacact aaagcagcgg ttaaaaagat cgaaaacgtt 540
acccaagaag caaaacgaga atttcagaat gaagttgagc tgttgagcaa gatccagcac 600
tccaatatta tatcattgtt gggctctgca agtgaaatca actcgagttt cgtcgtttat 660
gagttgatgg agaaaggatc cttagatgat cagttacatg gaccttcgtg tggatccgct 720
ctaacatggc atatgcgtat gaagattgct ctagatacag ctagaggact agagtatctc 780
catgaacatt gtcgtccacc agttatccac agggacctga aatcgtctaa tattcttctt 840
gattcttcct tcaatgccaa gatttcagat tttggtctgg ctgtatcggt tggagtgcat 900
gggagtaaca acattaaact ctctgggaca cttggttatg ttgccccgga atatctccta 960
gacggaaagt tgacggataa gagtgatgtc tatgcatttg gggtggttct tcttgaactt 1020
ttgttgggta ggcggccggt tgagaaattg agtccatctc agtgtcaatc tcttgtgact 1080
tgggcaatgc cacaacttac cgatagatcg aaactcccaa acatcgtgga tccggttata 1140
aaagatacaa tggatcttaa gcacttatac caagtagcag ccatggctgt gctgtgcgta 1200
cagccagaac cgagttaccg gccgctgata accgatgttc ttcattcact tgttccattg 1260
gttccggtag agctaggagg gactctccgg ttaacccgat ga 1302
<210> 26
<211> 433
<212> PRT
<213> 油菜
<400> 26
Met Lys Lys Leu Val His Leu Gln Phe Leu Phe Leu Val Lys Ile Phe
1 5 10 15
Ala Thr Gln Phe Leu Thr Pro Ser Ser Ser Ser Phe Ala Ala Ser Asn
20 25 30
Pro Ser Ile Ala Pro Val Tyr Thr Ser Met Thr Thr Phe Ser Pro Gly
35 40 45
Ile Gln Met Gly Ser Gly Glu Glu His Arg Leu Asp Ala His Lys Lys
50 55 60
Leu Leu Ile Gly Leu Ile Ile Ser Ser Ser Ser Leu Gly Ile Ile Ile
65 70 75 80
Leu Ile Cys Phe Gly Phe Trp Met Tyr Cys Arg Lys Lys Ala Pro Lys
85 90 95
Pro Ile Lys Ile Pro Asp Ala Glu Ser Gly Thr Ser Ser Phe Ser Met
100 105 110
Phe Val Arg Arg Leu Ser Ser Ile Lys Thr His Arg Thr Ser Ser Asn
115 120 125
Gln Gly Tyr Val Gln Arg Phe Asp Ser Lys Thr Leu Glu Lys Ala Thr
130 135 140
Gly Gly Phe Lys Asp Ser Asn Val Ile Gly Gln Gly Gly Phe Gly Cys
145 150 155 160
Val Tyr Lys Ala Ser Leu Asp Ser Asn Thr Lys Ala Ala Val Lys Lys
165 170 175
Ile Glu Asn Val Thr Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val
180 185 190
Glu Leu Leu Ser Lys Ile Gln His Ser Asn Ile Ile Ser Leu Leu Gly
195 200 205
Ser Ala Ser Glu Ile Asn Ser Ser Phe Val Val Tyr Glu Leu Met Glu
210 215 220
Lys Gly Ser Leu Asp Asp Gln Leu His Gly Pro Ser Cys Gly Ser Ala
225 230 235 240
Leu Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly
245 250 255
Leu Glu Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp
260 265 270
Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile
275 280 285
Ser Asp Phe Gly Leu Ala Val Ser Val Gly Val His Gly Ser Asn Asn
290 295 300
Ile Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu
305 310 315 320
Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val
325 330 335
Leu Leu Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Ser Pro
340 345 350
Ser Gln Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp
355 360 365
Arg Ser Lys Leu Pro Asn Ile Val Asp Pro Val Ile Lys Asp Thr Met
370 375 380
Asp Leu Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val
385 390 395 400
Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser
405 410 415
Leu Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr
420 425 430
Arg
<210> 27
<211> 657
<212> DNA
<213> 苦苣
<400> 27
atttttggtg ttgaaatgat gcacaacgga tctttggaat cccaattgca tggtccgtct 60
catggaactg gcttaagctg gcagcatcga atgaaaattg cacttgatat tgcacgagga 120
ctagagtatc ttcacgagcg ctgtaccccg cctgtgattc atagagatct gaaatcgtcc 180
aacattcttc taggttcgaa ctacaatgct aaactttctg atttcgggct cgcgattact 240
ggtgggattc agggcaagaa caacgtaaag ctttcgggaa cattaggtta tgtagctcca 300
gaatacctct tagatggtaa acttactgat aaaagtgatg tttatgcgtt tggagttgta 360
cttcttgaac ttttgatagg tagaaaacca gtggagaaaa tgtcaccatc tcaatgccaa 420
tctatcgtta catgggcaat gcctcaacta accgaccgat caaagcttcc taacatcgtt 480
gatcccgtga ttagagatac aatggacttg aagcacttgt atcaagttgc tgcggttgct 540
gtgctatgtg tacaaccgga accgagttac aggccattga taacagatgt tttgcattcg 600
ttcatcccac ttgtacctgt tgagcttgga gggtcgctaa gagttaccga atcttga 657
<210> 28
<211> 218
<212> PRT
<213> 苦苣
<400> 28
Ile Phe Gly Val Glu Met Met His Asn Gly Ser Leu Glu Ser Gln Leu
1 5 10 15
His Gly Pro Ser His Gly Thr Gly Leu Ser Trp Gln His Arg Met Lys
20 25 30
Ile Ala Leu Asp Ile Ala Arg Gly Leu Glu Tyr Leu His Glu Arg Cys
35 40 45
Thr Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu
50 55 60
Gly Ser Asn Tyr Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Ile Thr
65 70 75 80
Gly Gly Ile Gln Gly Lys Asn Asn Val Lys Leu Ser Gly Thr Leu Gly
85 90 95
Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys Ser
100 105 110
Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Ile Gly Arg
115 120 125
Lys Pro Val Glu Lys Met Ser Pro Ser Gln Cys Gln Ser Ile Val Thr
130 135 140
Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile Val
145 150 155 160
Asp Pro Val Ile Arg Asp Thr Met Asp Leu Lys His Leu Tyr Gln Val
165 170 175
Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro
180 185 190
Leu Ile Thr Asp Val Leu His Ser Phe Ile Pro Leu Val Pro Val Glu
195 200 205
Leu Gly Gly Ser Leu Arg Val Thr Glu Ser
210 215
<210> 29
<211> 474
<212> DNA
<213> 克莱门柚
<400> 29
aattcggcac gagggctgga ttccagtttt aatgcaaagc tttcagattt tggcctttct 60
gtgactgctg gaacccagag taggaatgtt aagatctctg gaactctggg ttatgttgcc 120
ccggagtacc tattagaagg aaaactaact gataaaagtg atgtatatgc tttcggagtt 180
gtattgctgg aacttttgat ggggagaagg cctgtggaaa agatgtcacc aactcaatgt 240
caatcaatgg tcacatgggc catgcctcag ctcaccgata gatcaaagct tccaaacatt 300
gtggatccag taattagaga cacaatggat ttaaagcact tataccaggt agccgctgtg 360
gcagtgctat gtatacaacc tgaaccaagt tataggccat tgataaccga cgttctgcat 420
tccctcattc ctcttgtacc taccgacctt ggagggtcac tccgagtgac ctaa 474
<210> 30
<211> 157
<212> PRT
<213> 克莱门柚
<400> 30
Asn Ser Ala Arg Gly Leu Asp Ser Ser Phe Asn Ala Lys Leu Ser Asp
1 5 10 15
Phe Gly Leu Ser Val Thr Ala Gly Thr Gln Ser Arg Asn Val Lys Ile
20 25 30
Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Glu Gly Lys
35 40 45
Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu
50 55 60
Leu Leu Met Gly Arg Arg Pro Val Glu Lys Met Ser Pro Thr Gln Cys
65 70 75 80
Gln Ser Met Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys
85 90 95
Leu Pro Asn Ile Val Asp Pro Val Ile Arg Asp Thr Met Asp Leu Lys
100 105 110
His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Ile Gln Pro Glu
115 120 125
Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Ile Pro
130 135 140
Leu Val Pro Thr Asp Leu Gly Gly Ser Leu Arg Val Thr
145 150 155
<210> 31
<211> 770
<212> DNA
<213> 橙
<400> 31
ggattgtgtt tgtggcttta tcatttgaag tactccttca aatccagtaa caagaatgca 60
aagagcaaag attctgagaa tggagttgtg ttatcatcat ttttgggcaa attcacttct 120
gtgaggatgg ttagtaagaa gggatctgct atttcattta ttgagtataa gctgttagag 180
aaagccaccg acagttttca tgagagtaat atattgggtg agggtggatt tggatgtgtt 240
tacaaggcta aattggatga taacttgcac gtcgctgtca aaaaattaga ttgtgcaaca 300
caagatgccg gcagagaatt tgagaatgag gtggatttgc tgagtaatat tcaccaccca 360
aatgttgttt gtctgttggg ttatagtgct catgatgaca caaggtttat tgtttatgaa 420
ttgatggaaa atcggtccct tgatattcaa ttgcatggtc cttctcatgg atcagcattg 480
acttggcata tgcgaatgaa aattgctctt gataccgcta gaggattaga atatttacat 540
gagcactgca accctgcagt cattcataga gatctgaaat cctccaatat acttctagat 600
tccaagttta atgctaagct ctcagatttt ggtcttgcca taaccgatgg atcccaaaac 660
aagaacaatc ttaagctttc gggcactttg ggatatgtgg ctcccgagta tcttttagat 720
ggtaaattga cagacaagag tgatgtctat gcttttggag ttgtgcttct 770
<210> 32
<211> 257
<212> PRT
<213> 橙
<400> 32
Gly Leu Cys Leu Trp Leu Tyr His Leu Lys Tyr Ser Phe Lys Ser Ser
1 5 10 15
Asn Lys Asn Ala Lys Ser Lys Asp Ser Glu Asn Gly Val Val Leu Ser
20 25 30
Ser Phe Leu Gly Lys Phe Thr Ser Val Arg Met Val Ser Lys Lys Gly
35 40 45
Ser Ala Ile Ser Phe Ile Glu Tyr Lys Leu Leu Glu Lys Ala Thr Asp
50 55 60
Ser Phe His Glu Ser Asn Ile Leu Gly Glu Gly Gly Phe Gly Cys Val
65 70 75 80
Tyr Lys Ala Lys Leu Asp Asp Asn Leu His Val Ala Val Lys Lys Leu
85 90 95
Asp Cys Ala Thr Gln Asp Ala Gly Arg Glu Phe Glu Asn Glu Val Asp
100 105 110
Leu Leu Ser Asn Ile His His Pro Asn Val Val Cys Leu Leu Gly Tyr
115 120 125
Ser Ala His Asp Asp Thr Arg Phe Ile Val Tyr Glu Leu Met Glu Asn
130 135 140
Arg Ser Leu Asp Ile Gln Leu His Gly Pro Ser His Gly Ser Ala Leu
145 150 155 160
Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
165 170 175
Glu Tyr Leu His Glu His Cys Asn Pro Ala Val Ile His Arg Asp Leu
180 185 190
Lys Ser Ser Asn Ile Leu Leu Asp Ser Lys Phe Asn Ala Lys Leu Ser
195 200 205
Asp Phe Gly Leu Ala Ile Thr Asp Gly Ser Gln Asn Lys Asn Asn Leu
210 215 220
Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
225 230 235 240
Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
245 250 255
Leu
<210> 33
<211> 621
<212> DNA
<213> 中粒咖啡
<400> 33
gcattgacat ggcatcttag gatgaaaatt gcccttgatg tagctagagg attagaattt 60
ttgcatgagc actgccaccc agcagtgatc catagagatc tgaaatcatc taatatcctt 120
ctggattcaa atctcaatgc taagctatct gattttggtc ttgccattct tgatggggct 180
caaaataaga acaacatcaa gctttctgga accttgggct atgtagctcc agagtacctc 240
ttagatggta aattgactga caagagtgat gtttatgctt ttggagtggt gcttttggag 300
cttctcctga gaagaaagcc tgtggagaag ctggcaccag ctcaatgcca atctatagtc 360
acatgggcta tgcctcagct gacagataga tcaaagcttc caaacatcgt ggatcctgtg 420
attagaaatg ctatggatat aaagcactta ttccaggttg ctgcagtcgc tgtgctatgc 480
gtgcagcctg aaccaagcta tcgaccactg ataacagatg tgttgcattc ccttgttccc 540
cttgttccta tggagcttgg cgggacgctc agagttgaac gacctgcttc tgtgacctct 600
ctgttgattg attctacctg a 621
<210> 34
<211> 206
<212> PRT
<213> 中粒咖啡
<400> 34
Ala Leu Thr Trp His Leu Arg Met Lys Ile Ala Leu Asp Val Ala Arg
1 5 10 15
Gly Leu Glu Phe Leu His Glu His Cys His Pro Ala Val Ile His Arg
20 25 30
Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asn Leu Asn Ala Lys
35 40 45
Leu Ser Asp Phe Gly Leu Ala Ile Leu Asp Gly Ala Gln Asn Lys Asn
50 55 60
Asn Ile Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu
65 70 75 80
Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val
85 90 95
Val Leu Leu Glu Leu Leu Leu Arg Arg Lys Pro Val Glu Lys Leu Ala
100 105 110
Pro Ala Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Thr
115 120 125
Asp Arg Ser Lys Leu Pro Asn Ile Val Asp Pro Val Ile Arg Asn Ala
130 135 140
Met Asp Ile Lys His Leu Phe Gln Val Ala Ala Val Ala Val Leu Cys
145 150 155 160
Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His
165 170 175
Ser Leu Val Pro Leu Val Pro Met Glu Leu Gly Gly Thr Leu Arg Val
180 185 190
Glu Arg Pro Ala Ser Val Thr Ser Leu Leu Ile Asp Ser Thr
195 200 205
<210> 35
<211> 411
<212> DNA
<213> 加利桉
<400> 35
actgaggtga cccggaagaa aaacagggta aagctatcgg gcactttggg ttatgtagcc 60
ccagaatatg tcttggatgg taaattgact gataagagtg atgtctatgc ctttggagtt 120
gtgcttttgg agctcctttt gagaagaagg cctcttgaga tagtagcacc cactcagtgc 180
cagtctattg ttacatgggc catgcctcag ctgaccgacc gaactaagct tccagatatt 240
gtggatcctg taattagaga tgcgatggat gtcaagcact tataccaggc agctgctgtt 300
gctgttttgt gtctgcaacc agaaccgatc taccggccac tgataacgga tgtactccac 360
tctctcattc cacttgtacc cgttgaactt gggggaacgc tgaagaccta g 411
<210> 36
<211> 136
<212> PRT
<213> 加利桉
<400> 36
Thr Glu Val Thr Arg Lys Lys Asn Arg Val Lys Leu Ser Gly Thr Leu
1 5 10 15
Gly Tyr Val Ala Pro Glu Tyr Val Leu Asp Gly Lys Leu Thr Asp Lys
20 25 30
Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Arg
35 40 45
Arg Arg Pro Leu Glu Ile Val Ala Pro Thr Gln Cys Gln Ser Ile Val
50 55 60
Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Thr Lys Leu Pro Asp Ile
65 70 75 80
Val Asp Pro Val Ile Arg Asp Ala Met Asp Val Lys His Leu Tyr Gln
85 90 95
Ala Ala Ala Val Ala Val Leu Cys Leu Gln Pro Glu Pro Ile Tyr Arg
100 105 110
Pro Leu Ile Thr Asp Val Leu His Ser Leu Ile Pro Leu Val Pro Val
115 120 125
Glu Leu Gly Gly Thr Leu Lys Thr
130 135
<210> 37
<211> 522
<212> DNA
<213> 高羊茅
<400> 37
acgaggcctc gtgccatact tttggattca gatttcaatg ccaagatttc ggatttcggt 60
cttgcagtgt caagtggaaa tcgcaccaaa ggtaatctga agctttccgg aactttgggc 120
tatgttgctc ctgagtactt attagacggg aagttgacag agaagagtga tgtatatgcg 180
ttcggagtag tacttcttga gcttttgtta ggaaggaggc caattgagaa gatggcccca 240
tctcaatgcc aatcaattgt tacatgggcc atgcctcagc taattgacag atcaaagctc 300
ccaaccataa ttgaccccgt gatcaggaac acgatggacc tgaagcactt gtaccaagtt 360
gctgcagtgg ctgtgctctg tgtgcagcca gaaccaagtt ataggccact aatcacagat 420
gtgctccact ctctgattcc cctggtgccc atggagctcg gagggtcact gagggctacc 480
ttggaatcgc ctcgcgtatc acaacatcgt tctccctgct ga 522
<210> 38
<211> 173
<212> PRT
<213> 高羊茅
<400> 38
Thr Arg Pro Arg Ala Ile Leu Leu Asp Ser Asp Phe Asn Ala Lys Ile
1 5 10 15
Ser Asp Phe Gly Leu Ala Val Ser Ser Gly Asn Arg Thr Lys Gly Asn
20 25 30
Leu Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu
35 40 45
Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly Val Val
50 55 60
Leu Leu Glu Leu Leu Leu Gly Arg Arg Pro Ile Glu Lys Met Ala Pro
65 70 75 80
Ser Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Ile Asp
85 90 95
Arg Ser Lys Leu Pro Thr Ile Ile Asp Pro Val Ile Arg Asn Thr Met
100 105 110
Asp Leu Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val
115 120 125
Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser
130 135 140
Leu Ile Pro Leu Val Pro Met Glu Leu Gly Gly Ser Leu Arg Ala Thr
145 150 155 160
Leu Glu Ser Pro Arg Val Ser Gln His Arg Ser Pro Cys
165 170
<210> 39
<211> 740
<212> DNA
<213> 银杏
<400> 39
cctttattga atagattgaa ctccttccgt ggttctagga gaaagggatg tgcatatata 60
attgaatatt ctctgctgca agcagccaca aataatttta gtacaagtga catccttgga 120
gagggtggtt ttgggtgtgt atacagagct aggttagatg atgatttctt tgctgctgtg 180
aagaagttag atgagggcag caagcaggct gagtatgaat ttcagaatga agttgaacta 240
atgagcaaaa tcagacatcc aaatcttgtt tctttgctgg ggttctgcat tcatgggaag 300
actcggttgc tagtctacga gctcatgcaa aatggttctt tggaagacca attacatggg 360
ccatctcatg gatccgcact tacatggtac ctgcgcatga aaatagccct tgattcagca 420
aggggtctag aacacttgca cgagcactgc aatcctgctg tgattcatcg tgatttcaaa 480
tcatcaaata tccttctgga tgcaagcttc aatgccaagc tttcagattt tggtcttgca 540
gtaacagctg caggaggtat tggtaatgct aatgtcgagc tactgggcac tttgggatat 600
gtagctccag aatacctgct tgatggcaag ttgacggaga aaagtgatgt ctatggattt 660
ggagttgttc ttttggagct aattatggga agaaagccag ttgataaatc tgtggcaact 720
gaaagtcaat cgctagtttc 740
<210> 40
<211> 247
<212> PRT
<213> 银杏
<400> 40
Pro Leu Leu Asn Arg Leu Asn Ser Phe Arg Gly Ser Arg Arg Lys Gly
1 5 10 15
Cys Ala Tyr Ile Ile Glu Tyr Ser Leu Leu Gln Ala Ala Thr Asn Asn
20 25 30
Phe Ser Thr Ser Asp Ile Leu Gly Glu Gly Gly Phe Gly Cys Val Tyr
35 40 45
Arg Ala Arg Leu Asp Asp Asp Phe Phe Ala Ala Val Lys Lys Leu Asp
50 55 60
Glu Gly Ser Lys Gln Ala Glu Tyr Glu Phe Gln Asn Glu Val Glu Leu
65 70 75 80
Met Ser Lys Ile Arg His Pro Asn Leu Val Ser Leu Leu Gly Phe Cys
85 90 95
Ile His Gly Lys Thr Arg Leu Leu Val Tyr Glu Leu Met Gln Asn Gly
100 105 110
Ser Leu Glu Asp Gln Leu His Gly Pro Ser His Gly Ser Ala Leu Thr
115 120 125
Trp Tyr Leu Arg Met Lys Ile Ala Leu Asp Ser Ala Arg Gly Leu Glu
130 135 140
His Leu His Glu His Cys Asn Pro Ala Val Ile His Arg Asp Phe Lys
145 150 155 160
Ser Ser Asn Ile Leu Leu Asp Ala Ser Phe Asn Ala Lys Leu Ser Asp
165 170 175
Phe Gly Leu Ala Val Thr Ala Ala Gly Gly Ile Gly Asn Ala Asn Val
180 185 190
Glu Leu Leu Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
195 200 205
Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Gly Phe Gly Val Val Leu
210 215 220
Leu Glu Leu Ile Met Gly Arg Lys Pro Val Asp Lys Ser Val Ala Thr
225 230 235 240
Glu Ser Gln Ser Leu Val Ser
245
<210> 41
<211> 1254
<212> DNA
<213> 橹豆
<400> 41
atgaaaatga agcttctcct catgcttctt cttcttgttc ttcttcttca ccaacccatt 60
tgggctgcag accctcctgc ttcttctcct gctttatctc caggggagga gcagcatcac 120
cggaataata aagtggtaat agctatcgtc gtagccacca ctgcacttgc tgcactcatt 180
ttcagtttct tatgcttctg ggtttatcat cataccaagt atccaacaaa atccaaattc 240
aaatccaaaa attttcgaag tccagatgca gagaagggga tcaccttagc accgtttgtg 300
agtaaattca gttccatcaa gattgttggc atggacgggt atgttccaat aattgactat 360
aagcaaatag aaaaaacgac caataatttt caagaaagta acatcttggg tgagggcggt 420
tttggacgtg tttacaaggc ttgtttggat cataacttgg atgttgcagt caaaaaacta 480
cattgtgaga ctcaacatgc tgagagagaa tttgagaacg aggtgaatat gttaagcaaa 540
attcagcatc cgaatataat atctttactg ggttgtagca tggatggtta cacgaggctc 600
gttgtctatg agctgatgca taatggatca ttggaagctc agttacatgg accttctcat 660
ggctcggcat tgacttggca catgaggatg aagattgctc ttgacacagc aagaggatta 720
gaatatctgc acgagcactg tcaccctgca gtgatccata gggatatgaa atcttctaat 780
attctcttag atgcaaactt caatgccaag ctgtctgatt ttggtcttgc cttaactgat 840
gggtcccaaa gcaagaagaa cattaaacta tcgggtacct tgggatacgt agcaccggag 900
tatcttctag atggtaaatt aagtgataaa agtgatgtct atgcttttgg ggttgtgcta 960
ttggagctcc tactaggaag gaagccagta gaaaaactgg taccagctca atgccaatct 1020
attgtcacat gggccatgcc acacctcacg gacagatcca agcttccaag cattgtggat 1080
ccagtgatta agaatacaat ggatcccaag cacttgtacc aggttgctgc tgtagctgtg 1140
ctgtgcgtgc aaccagaacc tagttaccgt ccactgatca ttgatgttct tcactcactc 1200
atccctcttg ttcccattga gcttggagga acactaagag tttcacaagt aatt 1254
<210> 42
<211> 418
<212> PRT
<213> 橹豆
<400> 42
Met Lys Met Lys Leu Leu Leu Met Leu Leu Leu Leu Val Leu Leu Leu
1 5 10 15
His Gln Pro Ile Trp Ala Ala Asp Pro Pro Ala Ser Ser Pro Ala Leu
20 25 30
Ser Pro Gly Glu Glu Gln His His Arg Asn Asn Lys Val Val Ile Ala
35 40 45
Ile Val Val Ala Thr Thr Ala Leu Ala Ala Leu Ile Phe Ser Phe Leu
50 55 60
Cys Phe Trp Val Tyr His His Thr Lys Tyr Pro Thr Lys Ser Lys Phe
65 70 75 80
Lys Ser Lys Asn Phe Arg Ser Pro Asp Ala Glu Lys Gly Ile Thr Leu
85 90 95
Ala Pro Phe Val Ser Lys Phe Ser Ser Ile Lys Ile Val Gly Met Asp
100 105 110
Gly Tyr Val Pro Ile Ile Asp Tyr Lys Gln Ile Glu Lys Thr Thr Asn
115 120 125
Asn Phe Gln Glu Ser Asn Ile Leu Gly Glu Gly Gly Phe Gly Arg Val
130 135 140
Tyr Lys Ala Cys Leu Asp His Asn Leu Asp Val Ala Val Lys Lys Leu
145 150 155 160
His Cys Glu Thr Gln His Ala Glu Arg Glu Phe Glu Asn Glu Val Asn
165 170 175
Met Leu Ser Lys Ile Gln His Pro Asn Ile Ile Ser Leu Leu Gly Cys
180 185 190
Ser Met Asp Gly Tyr Thr Arg Leu Val Val Tyr Glu Leu Met His Asn
195 200 205
Gly Ser Leu Glu Ala Gln Leu His Gly Pro Ser His Gly Ser Ala Leu
210 215 220
Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
225 230 235 240
Glu Tyr Leu His Glu His Cys His Pro Ala Val Ile His Arg Asp Met
245 250 255
Lys Ser Ser Asn Ile Leu Leu Asp Ala Asn Phe Asn Ala Lys Leu Ser
260 265 270
Asp Phe Gly Leu Ala Leu Thr Asp Gly Ser Gln Ser Lys Lys Asn Ile
275 280 285
Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
290 295 300
Gly Lys Leu Ser Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
305 310 315 320
Leu Glu Leu Leu Leu Gly Arg Lys Pro Val Glu Lys Leu Val Pro Ala
325 330 335
Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro His Leu Thr Asp Arg
340 345 350
Ser Lys Leu Pro Ser Ile Val Asp Pro Val Ile Lys Asn Thr Met Asp
355 360 365
Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln
370 375 380
Pro Glu Pro Ser Tyr Arg Pro Leu Ile Ile Asp Val Leu His Ser Leu
385 390 395 400
Ile Pro Leu Val Pro Ile Glu Leu Gly Gly Thr Leu Arg Val Ser Gln
405 410 415
Val Ile
<210> 43
<211> 702
<212> DNA
<213> 绢毛葵
<400> 43
actcaagcat caaaatattg taaatctttt gggtattgtg ttcatgatga cacaaggttt 60
ttggtctatg aaatgatgca tcaaggctct ttggactcac aattgcatgg accaactcat 120
ggaaccgcat taacctggca tcgaagaatg aaagtcgcac ttgatattgc tcgaggatta 180
gagtatcttc atgaacgatg caacccgcct gtgattcata gagatcttaa gtcatcgaac 240
attttgctag attccaattt caatgctaaa atttcgaatt ttgcacttgc taccactgag 300
ctccatgcga agaacaaagt taagctttcg gctacttctg gttatttggc tccggaatac 360
ctatcagaag gtaaacttac cgataaaagc gacgtatatg cattcggagt agtacttctt 420
gggcttttaa tcggtagaaa accagtggag aaaatgtcac catctttatt tcaatctatt 480
gtcacatggg caatgcctca gttaacagac cggtcaaagc ttccaaacat cgttgaccct 540
gtgattagag atacaatgga cctgaagcac ttatatcaag ttgctgctgt agccgtactt 600
tgcgtgcaac ccgaaccaag ttacagaccg ttgattacag acgtactaca ctcattcatt 660
ccactcgtac ccgttgatct tggagggtca ttaagagctt aa 702
<210> 44
<211> 233
<212> PRT
<213> 绢毛葵
<400> 44
Thr Gln Ala Ser Lys Tyr Cys Lys Ser Phe Gly Tyr Cys Val His Asp
1 5 10 15
Asp Thr Arg Phe Leu Val Tyr Glu Met Met His Gln Gly Ser Leu Asp
20 25 30
Ser Gln Leu His Gly Pro Thr His Gly Thr Ala Leu Thr Trp His Arg
35 40 45
Arg Met Lys Val Ala Leu Asp Ile Ala Arg Gly Leu Glu Tyr Leu His
50 55 60
Glu Arg Cys Asn Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn
65 70 75 80
Ile Leu Leu Asp Ser Asn Phe Asn Ala Lys Ile Ser Asn Phe Ala Leu
85 90 95
Ala Thr Thr Glu Leu His Ala Lys Asn Lys Val Lys Leu Ser Ala Thr
100 105 110
Ser Gly Tyr Leu Ala Pro Glu Tyr Leu Ser Glu Gly Lys Leu Thr Asp
115 120 125
Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Gly Leu Leu Ile
130 135 140
Gly Arg Lys Pro Val Glu Lys Met Ser Pro Ser Leu Phe Gln Ser Ile
145 150 155 160
Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn
165 170 175
Ile Val Asp Pro Val Ile Arg Asp Thr Met Asp Leu Lys His Leu Tyr
180 185 190
Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr
195 200 205
Arg Pro Leu Ile Thr Asp Val Leu His Ser Phe Ile Pro Leu Val Pro
210 215 220
Val Asp Leu Gly Gly Ser Leu Arg Ala
225 230
<210> 45
<211> 752
<212> DNA
<213> 蓝茎向日葵
<400> 45
cgatcatttc gttgcggctg taaaaaactc catggtccag aaccagatgc ccaaaaaggg 60
tttgagaatg aagtagattg gttaggtaaa ctcaagcatc aaaatattgt aaattttttg 120
ggttattgtg ttcatgatga cacaaggttt ttggtctatg aaatgatgca tcaaggctct 180
ttggactcac aattgcatgg accaactcat ggaaccgcat taacctggca tcgaagaatg 240
aaagtcgcac ttgatattgc tcgaggatta gagtatcttc atgaacgatg caacccgcct 300
gtgattcata gagatctcaa gtcatcgaac attttgctag attccaattt caatgctaaa 360
atttcgaatt ttgcacttgc taccactgag ctccatgcga agaacaaagt taagctttcg 420
ggtacttctg gttatttggc tccggaatac ctatccgaag gtaaacttac cgataaaagt 480
gatgtatatg cattcggagt agtacttctt gagcttttaa tcggtagaaa accagtggag 540
aaaatgtcac catctttatt tcaatctatt gtcacatggg caatgcctca gctaacagac 600
cggtcaaagc ttccaaacat tgttgaccct gtgattagag atacaatgga cctgaagcac 660
ttgtatcaag ttgctgctgt agccgtactt tgcgtgcaac ccgaaccaag ttacagaccg 720
ttgattacag acgtactaca ctcattcatt cc 752
<210> 46
<211> 251
<212> PRT
<213> 蓝茎向日葵
<400> 46
Arg Ser Phe Arg Cys Gly Cys Lys Lys Leu His Gly Pro Glu Pro Asp
1 5 10 15
Ala Gln Lys Gly Phe Glu Asn Glu Val Asp Trp Leu Gly Lys Leu Lys
20 25 30
His Gln Asn Ile Val Asn Phe Leu Gly Tyr Cys Val His Asp Asp Thr
35 40 45
Arg Phe Leu Val Tyr Glu Met Met His Gln Gly Ser Leu Asp Ser Gln
50 55 60
Leu His Gly Pro Thr His Gly Thr Ala Leu Thr Trp His Arg Arg Met
65 70 75 80
Lys Val Ala Leu Asp Ile Ala Arg Gly Leu Glu Tyr Leu His Glu Arg
85 90 95
Cys Asn Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu
100 105 110
Leu Asp Ser Asn Phe Asn Ala Lys Ile Ser Asn Phe Ala Leu Ala Thr
115 120 125
Thr Glu Leu His Ala Lys Asn Lys Val Lys Leu Ser Gly Thr Ser Gly
130 135 140
Tyr Leu Ala Pro Glu Tyr Leu Ser Glu Gly Lys Leu Thr Asp Lys Ser
145 150 155 160
Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Ile Gly Arg
165 170 175
Lys Pro Val Glu Lys Met Ser Pro Ser Leu Phe Gln Ser Ile Val Thr
180 185 190
Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile Val
195 200 205
Asp Pro Val Ile Arg Asp Thr Met Asp Leu Lys His Leu Tyr Gln Val
210 215 220
Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro
225 230 235 240
Leu Ile Thr Asp Val Leu His Ser Phe Ile Pro
245 250
<210> 47
<211> 630
<212> DNA
<213> HELIANTHUS EXILIS
<400> 47
atgatgcatc aagactcttt ggactcacaa ttgcatggac caactcatgg aaccgcatta 60
acctggcatc gaagaatgaa agtcgcactt gatattgctc gaggattaga gtatcttcat 120
gaacgatgca acccgcctgt gattcataga gatctcaagt catcgaacat tttgctagat 180
tccaatttca atgctaaaat ttcgaatttt gcacttgcta ccactgagct ccatgcgaag 240
aacaaagtta agctttcggg tacttctggt tatttggctc cggaatacct atccgaaggt 300
aaacttaccg ataaaagtga tgtatatgca ttcggagtag tacttcttga gcttttaatc 360
ggtagaaaac cagtggagaa aatgtcacca tctttatttc aatctattgt cacatgggca 420
atgcctcagc taacagaccg gtcaaagctt ccaaacattg ttgaccctgt gattagagat 480
acaatggacc tgaagcactt gtatcaagtt gctgctgtag ccgtactttg cgtgcaaccc 540
gaaccaagtt acagaccgtt gattacagac gtactacact cattcattcc actcgtaccc 600
gttgatcttg gagggtcatt aagagcttaa 630
<210> 48
<211> 209
<212> PRT
<213> HELIANTHUS EXILIS
<400> 48
Met Met His Gln Asp Ser Leu Asp Ser Gln Leu His Gly Pro Thr His
1 5 10 15
Gly Thr Ala Leu Thr Trp His Arg Arg Met Lys Val Ala Leu Asp Ile
20 25 30
Ala Arg Gly Leu Glu Tyr Leu His Glu Arg Cys Asn Pro Pro Val Ile
35 40 45
His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asn Phe Asn
50 55 60
Ala Lys Ile Ser Asn Phe Ala Leu Ala Thr Thr Glu Leu His Ala Lys
65 70 75 80
Asn Lys Val Lys Leu Ser Gly Thr Ser Gly Tyr Leu Ala Pro Glu Tyr
85 90 95
Leu Ser Glu Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly
100 105 110
Val Val Leu Leu Glu Leu Leu Ile Gly Arg Lys Pro Val Glu Lys Met
115 120 125
Ser Pro Ser Leu Phe Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu
130 135 140
Thr Asp Arg Ser Lys Leu Pro Asn Ile Val Asp Pro Val Ile Arg Asp
145 150 155 160
Thr Met Asp Leu Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu
165 170 175
Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu
180 185 190
His Ser Phe Ile Pro Leu Val Pro Val Asp Leu Gly Gly Ser Leu Arg
195 200 205
Ala
<210> 49
<211> 780
<212> DNA
<213> 大麦芽
<400> 49
aatttgagag gtgagctgga tttgcttcag aggattcagc attcgaatat agtgtccctt 60
gtgggcttct gcattcatga ggagaaccgc ttcattgttt atgagctgat ggtgaatgga 120
tcacttgaaa cacagcttca tgggccatca catggatcag ctctgagttg gcacattcgg 180
atgaagattg ctcttgatac agcaagggga ttggagtatc ttcacgagca ctgcaatcca 240
ccaatcatcc atagggatct gaagtcgtct aacatacttt tgaattcaga ctttaatgca 300
aagatttcag attttggcct tgcagtgaca agtggaaatc gcagcaaagg gaatctgaag 360
ctttccggta ctttgggtta tgttgcccct gagtacttac tagatgggaa gttgactgag 420
aagagcgatg tatatgcatt tggagtagta cttcttgagc ttcttttggg aaggaggcca 480
gttgagaaga tggcaccatc tcagtgtcaa tcaattgtta catgggccat gccccagcta 540
attgacagat ccaagctccc taccataatc gaccccgtga tcagggacac gatggatcgg 600
aagcacttgt accaagttgc tgcagtggct gtgctctgcg tgcagccaga accaagctac 660
aggccactga tcacagatgt cctccactct ctgattcccc tggtgcccat ggaccttgga 720
gggacgctga ggatcaaccc ggaatcgcct tgcacgacac gaaatcaatc tccctgctga 780
<210> 50
<211> 259
<212> PRT
<213> 大麦芽
<400> 50
Asn Leu Arg Gly Glu Leu Asp Leu Leu Gln Arg Ile Gln His Ser Asn
1 5 10 15
Ile Val Ser Leu Val Gly Phe Cys Ile His Glu Glu Asn Arg Phe Ile
20 25 30
Val Tyr Glu Leu Met Val Asn Gly Ser Leu Glu Thr Gln Leu His Gly
35 40 45
Pro Ser His Gly Ser Ala Leu Ser Trp His Ile Arg Met Lys Ile Ala
50 55 60
Leu Asp Thr Ala Arg Gly Leu Glu Tyr Leu His Glu His Cys Asn Pro
65 70 75 80
Pro Ile Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asn Ser
85 90 95
Asp Phe Asn Ala Lys Ile Ser Asp Phe Gly Leu Ala Val Thr Ser Gly
100 105 110
Asn Arg Ser Lys Gly Asn Leu Lys Leu Ser Gly Thr Leu Gly Tyr Val
115 120 125
Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Glu Lys Ser Asp Val
130 135 140
Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Gly Arg Arg Pro
145 150 155 160
Val Glu Lys Met Ala Pro Ser Gln Cys Gln Ser Ile Val Thr Trp Ala
165 170 175
Met Pro Gln Leu Ile Asp Arg Ser Lys Leu Pro Thr Ile Ile Asp Pro
180 185 190
Val Ile Arg Asp Thr Met Asp Arg Lys His Leu Tyr Gln Val Ala Ala
195 200 205
Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile
210 215 220
Thr Asp Val Leu His Ser Leu Ile Pro Leu Val Pro Met Asp Leu Gly
225 230 235 240
Gly Thr Leu Arg Ile Asn Pro Glu Ser Pro Cys Thr Thr Arg Asn Gln
245 250 255
Ser Pro Cys
<210> 51
<211> 816
<212> DNA
<213> 甘薯
<400> 51
cgggggctct tatcactcat tgctgctgct actgcactgg gtacaagctt attgctcatg 60
ggttgcttct ggatttatca tagaaagaaa atccacaaat ctcatgacat tattcatagc 120
ccagatgtag ttaaaggtct tgcattatcc tcatatatta gcaaatacaa ctccttcaag 180
tcgaattgtg tgaaacgaca tgtctcgttg tgggagtaca atacactcga gtcggccaca 240
aatagttttc aagaaagcga gatcttgggt ggaggggggt tcgggcttgt gtacaaggga 300
aaactagaag acaacttgta tgtagctgtg aagaggctgg aagttggaag acaaaacgca 360
attaaagaat tcgaggctga aatagaggta ttgggcacga ttcagcaccc gaatataatt 420
tcgttgttgg gatatagcat tcatgctgac acgaggctgc tagtttatga actgatgcag 480
aatggatctc tggagtatca actacatgga ccttcccatg gatcagcatt agcgtggcat 540
aatagattga aaatcgcact tgatacagca aggggattag aatatttaca tgaacattgc 600
aaaccaccag ttatccatag agatctgaaa tcctccaata ttcttctaga tgccaacttc 660
aatgccaaga tctcagattt tggtcttgct gtgcgcgatg gggctcaaaa caaaaataac 720
attaagctct cgggaaccgt tggctatgta gctccagaat acctattaga tggaatacta 780
acagataaaa gtgatgttta tggcttccga gttgta 816
<210> 52
<211> 272
<212> PRT
<213> 甘薯
<400> 52
Arg Gly Leu Leu Ser Leu Ile Ala Ala Ala Thr Ala Leu Gly Thr Ser
1 5 10 15
Leu Leu Leu Met Gly Cys Phe Trp Ile Tyr His Arg Lys Lys Ile His
20 25 30
Lys Ser His Asp Ile Ile His Ser Pro Asp Val Val Lys Gly Leu Ala
35 40 45
Leu Ser Ser Tyr Ile Ser Lys Tyr Asn Ser Phe Lys Ser Asn Cys Val
50 55 60
Lys Arg His Val Ser Leu Trp Glu Tyr Asn Thr Leu Glu Ser Ala Thr
65 70 75 80
Asn Ser Phe Gln Glu Ser Glu Ile Leu Gly Gly Gly Gly Phe Gly Leu
85 90 95
Val Tyr Lys Gly Lys Leu Glu Asp Asn Leu Tyr Val Ala Val Lys Arg
100 105 110
Leu Glu Val Gly Arg Gln Asn Ala Ile Lys Glu Phe Glu Ala Glu Ile
115 120 125
Glu Val Leu Gly Thr Ile Gln His Pro Asn Ile Ile Ser Leu Leu Gly
130 135 140
Tyr Ser Ile His Ala Asp Thr Arg Leu Leu Val Tyr Glu Leu Met Gln
145 150 155 160
Asn Gly Ser Leu Glu Tyr Gln Leu His Gly Pro Ser His Gly Ser Ala
165 170 175
Leu Ala Trp His Asn Arg Leu Lys Ile Ala Leu Asp Thr Ala Arg Gly
180 185 190
Leu Glu Tyr Leu His Glu His Cys Lys Pro Pro Val Ile His Arg Asp
195 200 205
Leu Lys Ser Ser Asn Ile Leu Leu Asp Ala Asn Phe Asn Ala Lys Ile
210 215 220
Ser Asp Phe Gly Leu Ala Val Arg Asp Gly Ala Gln Asn Lys Asn Asn
225 230 235 240
Ile Lys Leu Ser Gly Thr Val Gly Tyr Val Ala Pro Glu Tyr Leu Leu
245 250 255
Asp Gly Ile Leu Thr Asp Lys Ser Asp Val Tyr Gly Phe Arg Val Val
260 265 270
<210> 53
<211> 867
<212> DNA
<213> 莴苣
<400> 53
ggggatatac gtgtagaatc agcaacaaat aacttcggtg aaagcgagat attaggcgta 60
ggtggatttg gatgcgtgta taaagctcga ctcgatgata atttgcatgt agctgttaaa 120
agattagatg gtattagtca agacgccatt aaagaattcc agacggaggt ggatctattg 180
agtaaaattc atcatccgaa tatcatcacc ttattgggat attgtgttaa tgatgaaacc 240
aagcttcttg tttatgaact gatgcataat ggatctttag aaactcaatt acatgggcct 300
tccagtggat ccaatttaac atggcattgc aggatgaaga ttgctctaga tacagcaaga 360
ggattagaat atttgcatga gaactgcaaa ccatcggtga ttcatagaga tctgaaatca 420
tctaatatcc ttctggattc cagcttcaat gctaagcttt cagattttgg tcttgctata 480
atggatgggg cccagaacaa aaacaacatt aagctttcag ggacattggg ttatgtagct 540
cccgagtatc ttttagatgg aaaattgacg gataaaagtg acgtgtatgc gtttggagtt 600
gtgcttttag agcttttact tggaaggcga cctgtagaaa aattagcaga gtcgcaatgc 660
caatctattg tcacttgggc tatgccacaa ttaacagaca gatcaaagct tccgaatatt 720
gtagatcccg tgatcagata cacaatggat ctcaagcacc tgtaccaagt tgctgcggtg 780
gctgtgttat gtgtacaacc cggaccaagc taccggccat ttataaaccg acgtcttgca 840
ttctctgatc cctcttgttc cccgtga 867
<210> 54
<211> 288
<212> PRT
<213> 莴苣
<400> 54
Gly Asp Ile Arg Val Glu Ser Ala Thr Asn Asn Phe Gly Glu Ser Glu
1 5 10 15
Ile Leu Gly Val Gly Gly Phe Gly Cys Val Tyr Lys Ala Arg Leu Asp
20 25 30
Asp Asn Leu His Val Ala Val Lys Arg Leu Asp Gly Ile Ser Gln Asp
35 40 45
Ala Ile Lys Glu Phe Gln Thr Glu Val Asp Leu Leu Ser Lys Ile His
50 55 60
His Pro Asn Ile Ile Thr Leu Leu Gly Tyr Cys Val Asn Asp Glu Thr
65 70 75 80
Lys Leu Leu Val Tyr Glu Leu Met His Asn Gly Ser Leu Glu Thr Gln
85 90 95
Leu His Gly Pro Ser Ser Gly Ser Asn Leu Thr Trp His Cys Arg Met
100 105 110
Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu Glu Tyr Leu His Glu Asn
115 120 125
Cys Lys Pro Ser Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu
130 135 140
Leu Asp Ser Ser Phe Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Ile
145 150 155 160
Met Asp Gly Ala Gln Asn Lys Asn Asn Ile Lys Leu Ser Gly Thr Leu
165 170 175
Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys
180 185 190
Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Gly
195 200 205
Arg Arg Pro Val Glu Lys Leu Ala Glu Ser Gln Cys Gln Ser Ile Val
210 215 220
Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile
225 230 235 240
Val Asp Pro Val Ile Arg Tyr Thr Met Asp Leu Lys His Leu Tyr Gln
245 250 255
Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Gly Pro Ser Tyr Arg
260 265 270
Pro Phe Ile Asn Arg Arg Leu Ala Phe Ser Asp Pro Ser Cys Ser Pro
275 280 285
<210> 55
<211> 804
<212> DNA
<213> 蒺藜苜蓿
<400> 55
aagttgaact gtgaatgtca atatgctgag agagaatttg agaatgaggt ggatttgtta 60
agtaaaattc aacatccaaa tgtaatttct ctactgggct gtagcagtaa tgaggattca 120
aggtttattg tctatgagtt gatgcaaaat ggatcattgg aaactcaatt acatggacca 180
tctcatggct cagcattgac ttggcatatg aggatgaaga ttgctcttga cacagctaga 240
ggtttaaaat atctgcatga gcactgctac cctgcagtga tccatagaga tctgaaatct 300
tctaatattc ttttagatgc aaacttcaat gccaagcttt ctgattttgg tcttgcaata 360
actgatgggt cccaaaacaa gaataacatc aagctttcag gcacattggg gtatgttgcc 420
ccggagtatc ttttagatgg taaattgaca gataaaagtg atgtgtatgc ttttggagtt 480
gtgcttcttg agcttctatt aggaagaaag cctgtggaaa aacttacacc atctcaatgc 540
cagtctattg tcacatgggc catgccacag ctcacagaca gatccaagct tccaaacatt 600
gtggataatg tgattaagaa tacaatggat cctaagcact tataccaggt tgctgctgtg 660
gctgtattat gtgtgcaacc agagccgtgc taccgccctt tgattgcaga tgttctacac 720
tccctcatcc ctcttgtacc tgttgagctt ggaggaacac tcagagttgc acaagtgacg 780
cagcaaccta agaattctag ttaa 804
<210> 56
<211> 267
<212> PRT
<213> 蒺藜苜蓿
<400> 56
Lys Leu Asn Cys Glu Cys Gln Tyr Ala Glu Arg Glu Phe Glu Asn Glu
1 5 10 15
Val Asp Leu Leu Ser Lys Ile Gln His Pro Asn Val Ile Ser Leu Leu
20 25 30
Gly Cys Ser Ser Asn Glu Asp Ser Arg Phe Ile Val Tyr Glu Leu Met
35 40 45
Gln Asn Gly Ser Leu Glu Thr Gln Leu His Gly Pro Ser His Gly Ser
50 55 60
Ala Leu Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg
65 70 75 80
Gly Leu Lys Tyr Leu His Glu His Cys Tyr Pro Ala Val Ile His Arg
85 90 95
Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ala Asn Phe Asn Ala Lys
100 105 110
Leu Ser Asp Phe Gly Leu Ala Ile Thr Asp Gly Ser Gln Asn Lys Asn
115 120 125
Asn Ile Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu
130 135 140
Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val
145 150 155 160
Val Leu Leu Glu Leu Leu Leu Gly Arg Lys Pro Val Glu Lys Leu Thr
165 170 175
Pro Ser Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Thr
180 185 190
Asp Arg Ser Lys Leu Pro Asn Ile Val Asp Asn Val Ile Lys Asn Thr
195 200 205
Met Asp Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys
210 215 220
Val Gln Pro Glu Pro Cys Tyr Arg Pro Leu Ile Ala Asp Val Leu His
225 230 235 240
Ser Leu Ile Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Val
245 250 255
Ala Gln Val Thr Gln Gln Pro Lys Asn Ser Ser
260 265
<210> 57
<211> 636
<212> DNA
<213> 烟草
<400> 57
cagttgcatg gacctcctcg tggatcagct ttgaattggc atcttcgcat ggaaattgca 60
ttggatgtgg ctaggggact agaatacctc catgagcgct gtaacccccc tgtaatccat 120
agagatctca aatcgtctaa tgttctattg gattcctact tcaatgcaaa gctttctgac 180
ttttggccta gctatagctg gatggaactt aaacaagagc accgtaaagt ctttcgggaa 240
ctctgggata tgtggctcca gagttacctc ttagatggga aattaactga taagagtgat 300
gtctatgctt tcggcattat acttctggag cttctaatgg ggagaagacc attggagaaa 360
ctagcaggag ctcagtgcca atctatcgtc acatgggcaa tgccacagct tactgacagg 420
tcaaagctcc caaatattgt tgatcctgtc atcagaaacg gaatgggcct caagcacttg 480
tatcaagttg ctgctgtagc cgtgctatgt gtacaaccag aaccaagtta ccgaccactg 540
ataacagatg tcctgcactc cttcattccc cttgtaccaa ttgagcttgg tgggtccttg 600
agagttgtgg attctgcatt atctgttaac gcataa 636
<210> 58
<211> 211
<212> PRT
<213> 烟草
<400> 58
Gln Leu His Gly Pro Pro Arg Gly Ser Ala Leu Asn Trp His Leu Arg
1 5 10 15
Met Glu Ile Ala Leu Asp Val Ala Arg Gly Leu Glu Tyr Leu His Glu
20 25 30
Arg Cys Asn Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Val
35 40 45
Leu Leu Asp Ser Tyr Phe Asn Ala Lys Leu Ser Asp Phe Trp Pro Ser
50 55 60
Tyr Ser Trp Met Glu Leu Lys Gln Glu His Arg Lys Val Phe Arg Glu
65 70 75 80
Leu Trp Asp Met Trp Leu Gln Ser Tyr Leu Leu Asp Gly Lys Leu Thr
85 90 95
Asp Lys Ser Asp Val Tyr Ala Phe Gly Ile Ile Leu Leu Glu Leu Leu
100 105 110
Met Gly Arg Arg Pro Leu Glu Lys Leu Ala Gly Ala Gln Cys Gln Ser
115 120 125
Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro
130 135 140
Asn Ile Val Asp Pro Val Ile Arg Asn Gly Met Gly Leu Lys His Leu
145 150 155 160
Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser
165 170 175
Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Phe Ile Pro Leu Val
180 185 190
Pro Ile Glu Leu Gly Gly Ser Leu Arg Val Val Asp Ser Ala Leu Ser
195 200 205
Val Asn Ala
210
<210> 59
<211> 1437
<212> DNA
<213> 水稻
<400> 59
atggagatgg cgctaactcc attgccgctc ctgtgttcgt ccgtcttgtt cttggtgcta 60
tcttcgtgct cgttggccaa tgggagggat acgccttctt cttcttcttc ttcttcttct 120
tcttcttctt cttcttcttc ttcttcttct tcttcttctt ctccggcgac gtctactgtg 180
gccaccggca tttccgccgc cgccgccgcc gccgccaatg ggacggccgc cttgtcttcg 240
gcagttccgg cgcctccgcc tgttgtgatc gtagtgcacc accatttcca ccgcgagctg 300
gtcatcgccg ccgtcctcgc ctgcatcgcc accgtcacga tcttcctttc cacgctctac 360
gcttggacac tatggcggcg atctcgccgg agcaccggcg gcaaggtcac caggagctca 420
gacgcagcga aggggatcaa gctggtgccg atcttgagca ggttcaactc ggtgaagatg 480
agcaggaaga ggctggttgg gatgttcgag tacccgtcgc tggaggcagc gacagagaag 540
ttcagcgaga gcaacatgct cggtgtcggc gggtttggcc gcgtctacaa ggcggcgttc 600
gacgccggag ttaccgcggc ggtgaagcgg ctcgacggcg gcgggcccga ctgcgagaag 660
gaattcgaga atgagctgga tttgcttggc aggatcaggc accccaacat tgtgtccctc 720
ttgggcttct gtatccatga ggggaatcac tacattgttt atgagctgat ggagaaggga 780
tcactggaaa cacagcttca tgggtcttca catggatcaa ctctgagctg gcacatccgg 840
atgaagatcg cccttgacac ggccagggga ttagagtacc ttcatgagca ctgcagtcca 900
ccagtgatcc atagggatct gaaatcgtct aacatacttt tggattcaga cttcaatgct 960
aagattgcag attttggtct tgctgtgtct agtgggagtg tcaacaaagg gagtgtgaag 1020
ctctccggga ccttgggtta tgtagctcct gagtacttgt tggatgggaa gttgactgaa 1080
aagagcgatg tatacgcgtt cggagtagtg cttctagagc tccttatggg gaggaagcct 1140
gttgagaaga tgtcaccatc tcagtgccaa tcaattgtga catgggcaat gccacagttg 1200
accgacagat cgaagctccc cagcatagtt gacccagtga tcaaggacac catggatcca 1260
aaacacctgt accaagttgc agcagtggct gttctatgcg tgcaggctga accaagctac 1320
aggccactga tcacagatgt gctccactct cttgttcctc tagtgccgac ggagctcgga 1380
ggaacactaa gagctggaga gccaccttcc ccgaacctga ggaattctcc atgctga 1437
<210> 60
<211> 478
<212> PRT
<213> 水稻
<400> 60
Met Glu Met Ala Leu Thr Pro Leu Pro Leu Leu Cys Ser Ser Val Leu
1 5 10 15
Phe Leu Val Leu Ser Ser Cys Ser Leu Ala Asn Gly Arg Asp Thr Pro
20 25 30
Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser Ser
35 40 45
Ser Ser Ser Ser Ser Ser Pro Ala Thr Ser Thr Val Ala Thr Gly Ile
50 55 60
Ser Ala Ala Ala Ala Ala Ala Ala Asn Gly Thr Ala Ala Leu Ser Ser
65 70 75 80
Ala Val Pro Ala Pro Pro Pro Val Val Ile Val Val His His His Phe
85 90 95
His Arg Glu Leu Val Ile Ala Ala Val Leu Ala Cys Ile Ala Thr Val
100 105 110
Thr Ile Phe Leu Ser Thr Leu Tyr Ala Trp Thr Leu Trp Arg Arg Ser
115 120 125
Arg Arg Ser Thr Gly Gly Lys Val Thr Arg Ser Ser Asp Ala Ala Lys
130 135 140
Gly Ile Lys Leu Val Pro Ile Leu Ser Arg Phe Asn Ser Val Lys Met
145 150 155 160
Ser Arg Lys Arg Leu Val Gly Met Phe Glu Tyr Pro Ser Leu Glu Ala
165 170 175
Ala Thr Glu Lys Phe Ser Glu Ser Asn Met Leu Gly Val Gly Gly Phe
180 185 190
Gly Arg Val Tyr Lys Ala Ala Phe Asp Ala Gly Val Thr Ala Ala Val
195 200 205
Lys Arg Leu Asp Gly Gly Gly Pro Asp Cys Glu Lys Glu Phe Glu Asn
210 215 220
Glu Leu Asp Leu Leu Gly Arg Ile Arg His Pro Asn Ile Val Ser Leu
225 230 235 240
Leu Gly Phe Cys Ile His Glu Gly Asn His Tyr Ile Val Tyr Glu Leu
245 250 255
Met Glu Lys Gly Ser Leu Glu Thr Gln Leu His Gly Ser Ser His Gly
260 265 270
Ser Thr Leu Ser Trp His Ile Arg Met Lys Ile Ala Leu Asp Thr Ala
275 280 285
Arg Gly Leu Glu Tyr Leu His Glu His Cys Ser Pro Pro Val Ile His
290 295 300
Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asp Phe Asn Ala
305 310 315 320
Lys Ile Ala Asp Phe Gly Leu Ala Val Ser Ser Gly Ser Val Asn Lys
325 330 335
Gly Ser Val Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr
340 345 350
Leu Leu Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly
355 360 365
Val Val Leu Leu Glu Leu Leu Met Gly Arg Lys Pro Val Glu Lys Met
370 375 380
Ser Pro Ser Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu
385 390 395 400
Thr Asp Arg Ser Lys Leu Pro Ser Ile Val Asp Pro Val Ile Lys Asp
405 410 415
Thr Met Asp Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu
420 425 430
Cys Val Gln Ala Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu
435 440 445
His Ser Leu Val Pro Leu Val Pro Thr Glu Leu Gly Gly Thr Leu Arg
450 455 460
Ala Gly Glu Pro Pro Ser Pro Asn Leu Arg Asn Ser Pro Cys
465 470 475
<210> 61
<211> 891
<212> DNA
<213> 小立碗藓
<400> 61
tactctcttt tacaaactgc tacgaacaac ttcagctcct ccaatttgct gggcgaggga 60
agtttcgggc atgtgtataa agcgagactc gattatgatg tctatgccgc tgtaaagaga 120
cttaccagcg taggaaaaca gccccaaaaa gaactccagg gagaggtgga tctgatgtgc 180
aagataagac atcccaactt ggtggctctc ctgggctatt caaatgacgg cccagagccc 240
ttggttgtgt acgagctcat gcagaatggt tcacttcatg atcagcttca tggcccctca 300
tgcgggagtg cactcacctg gtacctacga ctaaagattg ctcttgaagc tgccagcaga 360
ggactggagc acctgcatga aagctgcaag cctgcaataa tccacagaga cttcaaggca 420
tccaacatcc tcttggacgc cagcttcaat gcgaaggtgt ccgactttgg tatagcggta 480
gctctggagg aaggtggcgt ggtgaaagac gacgtacaag tgcaaggcac cttcgggtac 540
attgctcctg agtacctgat ggacgggaca ttgacagaga agagtgatgt ttacggattt 600
ggagtagtat tgcttgagct gctgacaggc agactgccca ttgatacgtc cttaccactc 660
ggatcgcaat ctctagtgac atgggtaaca cccatactaa ctaaccgagc aaagctgatg 720
gaagttatcg accccaccct tcaagatacg ctgaacgtga agcaacttca ccaggtggcc 780
gcagtggcag tcctttgcgt ccaagcggaa cccagctacc gccctctcat cgccgacgtg 840
gttcagtcac tggctccgct ggtgcctcaa gagctcggcg gcgcattgcg a 891
<210> 62
<211> 297
<212> PRT
<213> 小立碗藓
<400> 62
Tyr Ser Leu Leu Gln Thr Ala Thr Asn Asn Phe Ser Ser Ser Asn Leu
1 5 10 15
Leu Gly Glu Gly Ser Phe Gly His Val Tyr Lys Ala Arg Leu Asp Tyr
20 25 30
Asp Val Tyr Ala Ala Val Lys Arg Leu Thr Ser Val Gly Lys Gln Pro
35 40 45
Gln Lys Glu Leu Gln Gly Glu Val Asp Leu Met Cys Lys Ile Arg His
50 55 60
Pro Asn Leu Val Ala Leu Leu Gly Tyr Ser Asn Asp Gly Pro Glu Pro
65 70 75 80
Leu Val Val Tyr Glu Leu Met Gln Asn Gly Ser Leu His Asp Gln Leu
85 90 95
His Gly Pro Ser Cys Gly Ser Ala Leu Thr Trp Tyr Leu Arg Leu Lys
100 105 110
Ile Ala Leu Glu Ala Ala Ser Arg Gly Leu Glu His Leu His Glu Ser
115 120 125
Cys Lys Pro Ala Ile Ile His Arg Asp Phe Lys Ala Ser Asn Ile Leu
130 135 140
Leu Asp Ala Ser Phe Asn Ala Lys Val Ser Asp Phe Gly Ile Ala Val
145 150 155 160
Ala Leu Glu Glu Gly Gly Val Val Lys Asp Asp Val Gln Val Gln Gly
165 170 175
Thr Phe Gly Tyr Ile Ala Pro Glu Tyr Leu Met Asp Gly Thr Leu Thr
180 185 190
Glu Lys Ser Asp Val Tyr Gly Phe Gly Val Val Leu Leu Glu Leu Leu
195 200 205
Thr Gly Arg Leu Pro Ile Asp Thr Ser Leu Pro Leu Gly Ser Gln Ser
210 215 220
Leu Val Thr Trp Val Thr Pro Ile Leu Thr Asn Arg Ala Lys Leu Met
225 230 235 240
Glu Val Ile Asp Pro Thr Leu Gln Asp Thr Leu Asn Val Lys Gln Leu
245 250 255
His Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Ala Glu Pro Ser
260 265 270
Tyr Arg Pro Leu Ile Ala Asp Val Val Gln Ser Leu Ala Pro Leu Val
275 280 285
Pro Gln Glu Leu Gly Gly Ala Leu Arg
290 295
<210> 63
<211> 1065
<212> DNA
<213> 云杉
<400> 63
acctcagatg cctatagggg tattccactc atgcctctcc tgaatcgttt gaactcccgt 60
atttccaaga agaagggatg tgcaactgca attgaatatt ctaagctgca agcagctaca 120
aataacttca gcagcaataa cattcttgga gagggtggat ttgcgtgtgt atacaaggcc 180
atgtttgatg atgattcctt tgctgctgtg aagaagctag atgagggtag cagacaggct 240
gagcatgaat ttcagaatga agtggagctg atgagcaaaa tccgacatcc aaaccttgtt 300
tctttgcttg ggttctgctc tcatgaaaat acacggttct tagtatatga tctgatgcag 360
aatggctctt tggaagacca attacatggg ccatctcacg gatctgcact tacatggttt 420
ttgcgcataa agatagcact tgattcagca aggggtctag aacacttgca tgagcactgc 480
aaccctgcag tgattcatcg agatttcaaa tcatcaaata ttcttcttga tgcaagcttc 540
aacgccaagc tttcagattt tggtcttgca gtaacaagtg caggatgtgc tggcaataca 600
aatattgatc tagtagggac attgggatat gtagctccag aatacctact tgatggtaaa 660
ttgacagaga aaagtgatgt ctatgcatat ggagttgttt tgttggagct actttttgga 720
agaaagccaa ttgataaatc tctaccaagt gaatgccaat ctctcatttc ttgggcaatg 780
ccacagctaa cagatagaga aaagctccca actatagtag accccatgat caaaggcaca 840
atgaacttga aacacctata tcaagtagca gctgttgcaa tgctatgtgt gcagccagaa 900
cccagttaca ggccattaat agctgacgtt gtgcactctc tcattcctct cgtaccaata 960
gaactcgggg gaactttaaa gctctctaat gcacgaccca ctgagatgaa gttatttact 1020
tcttcccaat gcagtgttga gattgcttcc aacccaaaat tgtga 1065
<210> 64
<211> 354
<212> PRT
<213> 云杉
<400> 64
Thr Ser Asp Ala Tyr Arg Gly Ile Pro Leu Met Pro Leu Leu Asn Arg
1 5 10 15
Leu Asn Ser Arg Ile Ser Lys Lys Lys Gly Cys Ala Thr Ala Ile Glu
20 25 30
Tyr Ser Lys Leu Gln Ala Ala Thr Asn Asn Phe Ser Ser Asn Asn Ile
35 40 45
Leu Gly Glu Gly Gly Phe Ala Cys Val Tyr Lys Ala Met Phe Asp Asp
50 55 60
Asp Ser Phe Ala Ala Val Lys Lys Leu Asp Glu Gly Ser Arg Gln Ala
65 70 75 80
Glu His Glu Phe Gln Asn Glu Val Glu Leu Met Ser Lys Ile Arg His
85 90 95
Pro Asn Leu Val Ser Leu Leu Gly Phe Cys Ser His Glu Asn Thr Arg
100 105 110
Phe Leu Val Tyr Asp Leu Met Gln Asn Gly Ser Leu Glu Asp Gln Leu
115 120 125
His Gly Pro Ser His Gly Ser Ala Leu Thr Trp Phe Leu Arg Ile Lys
130 135 140
Ile Ala Leu Asp Ser Ala Arg Gly Leu Glu His Leu His Glu His Cys
145 150 155 160
Asn Pro Ala Val Ile His Arg Asp Phe Lys Ser Ser Asn Ile Leu Leu
165 170 175
Asp Ala Ser Phe Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Val Thr
180 185 190
Ser Ala Gly Cys Ala Gly Asn Thr Asn Ile Asp Leu Val Gly Thr Leu
195 200 205
Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Glu Lys
210 215 220
Ser Asp Val Tyr Ala Tyr Gly Val Val Leu Leu Glu Leu Leu Phe Gly
225 230 235 240
Arg Lys Pro Ile Asp Lys Ser Leu Pro Ser Glu Cys Gln Ser Leu Ile
245 250 255
Ser Trp Ala Met Pro Gln Leu Thr Asp Arg Glu Lys Leu Pro Thr Ile
260 265 270
Val Asp Pro Met Ile Lys Gly Thr Met Asn Leu Lys His Leu Tyr Gln
275 280 285
Val Ala Ala Val Ala Met Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg
290 295 300
Pro Leu Ile Ala Asp Val Val His Ser Leu Ile Pro Leu Val Pro Ile
305 310 315 320
Glu Leu Gly Gly Thr Leu Lys Leu Ser Asn Ala Arg Pro Thr Glu Met
325 330 335
Lys Leu Phe Thr Ser Ser Gln Cys Ser Val Glu Ile Ala Ser Asn Pro
340 345 350
Lys Leu
<210> 65
<211> 596
<212> DNA
<213> 松属
<400> 65
aattcggcac gaggagaaca cttgcacgag cactgcaacc ctgcagtgat tcaccgagat 60
ttcaaatcat caaatattct tcttgatgca agcttcaacg ccaagctttc agattttggt 120
cttgcagtaa aaagtgcagg atgtgctggt aacacaaata ttgatctagt agggacattg 180
ggatatgtag ctccagaata catgcttgat ggtaaattga cagagaaaag tgatgtctat 240
gcatatggag ttgttttgtt agagctactt tttggaagaa agccaattga taaatctcta 300
ccaagtgaat gccaatctct catttcttgg gcaatgccac agctaacaga tagagaaaag 360
ctcccgacta taatagatcc catgatcaaa ggcgcaatga acttgaaaca cctatatcaa 420
gtggcagctg ttgcagtgct atgtgtgcag ccagaaccca gttacaggcc attaatagct 480
gacgttgtgc actctctcat tcctctcgta ccagtagaac ttgggggaac attaaagtca 540
tcacccactg agatgaagtc atttgcttct tcccaatgca gtgcccacgt tgcttc 596
<210> 66
<211> 199
<212> PRT
<213> 松属
<400> 66
Asn Ser Ala Arg Gly Glu His Leu His Glu His Cys Asn Pro Ala Val
1 5 10 15
Ile His Arg Asp Phe Lys Ser Ser Asn Ile Leu Leu Asp Ala Ser Phe
20 25 30
Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Val Lys Ser Ala Gly Cys
35 40 45
Ala Gly Asn Thr Asn Ile Asp Leu Val Gly Thr Leu Gly Tyr Val Ala
50 55 60
Pro Glu Tyr Met Leu Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr
65 70 75 80
Ala Tyr Gly Val Val Leu Leu Glu Leu Leu Phe Gly Arg Lys Pro Ile
85 90 95
Asp Lys Ser Leu Pro Ser Glu Cys Gln Ser Leu Ile Ser Trp Ala Met
100 105 110
Pro Gln Leu Thr Asp Arg Glu Lys Leu Pro Thr Ile Ile Asp Pro Met
115 120 125
Ile Lys Gly Ala Met Asn Leu Lys His Leu Tyr Gln Val Ala Ala Val
130 135 140
Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Ala
145 150 155 160
Asp Val Val His Ser Leu Ile Pro Leu Val Pro Val Glu Leu Gly Gly
165 170 175
Thr Leu Lys Ser Ser Pro Thr Glu Met Lys Ser Phe Ala Ser Ser Gln
180 185 190
Cys Ser Ala His Val Ala Ser
195
<210> 67
<211> 1377
<212> DNA
<213> 杨属
<400> 67
atgttcttgt ttcctaaaac agttcctatt tggttttttc atctgtgtct agtagcagtt 60
catgccatac aagaagaccc acctgtccct tcaccatctc cctctctcat ttctcctatt 120
tcaacttcaa tggctgcctt ctctccaggg gttgaatcgg aaatgggaat caaagaccac 180
ccccagcatg atgacctcca caggaaaata atcttgttgc tcactgttgc ttgttgcata 240
cttgttatca tccttctttc tttgtgttct tgtttcattt actataagaa gtcctcacaa 300
aagaaaaaag ctactcggtg ttcagatgtg gagaaagggc tttcattggc accatttttg 360
ggcaaattca gttccttgaa aatggttagt aataggggat ctgtttcatt aattgagtat 420
aagatactag agaaaggaac aaacaatttt ggcgatgata aattgttggg aaagggagga 480
tttggacgtg tatataaggc tgtaatggaa gatgactcaa gtgctgcagt caagaaacta 540
gactgcgcaa ctgatgatgc gcagagagaa tttgagaatg aggtggattt gttaagcaaa 600
tttcaccatc caaatataat ttctattgtg ggttttagtg ttcatgagga gatggggttc 660
attatttatg agttaatgcc aaatgggtgc cttgaagatc tactgcatgg accttctcgt 720
ggatcttcac taaattggca tttaaggttg aaaattgctc ttgatacagc aagaggatta 780
gaatatctgc atgaattctg caagccagca gtgatccata gagatctgaa atcatcgaat 840
attcttttgg acgccaactt caatgccaag ctgtcagatt ttggtcttgc tgtagctgat 900
agctctcata acaagaaaaa gctcaagctt tcaggcactg tgggttatgt agccccagag 960
tatatgttag atggtgaatt gacggataag agtgatgtct atgcttttgg agttgtgctt 1020
ctagagcttc tattaggaag aaggcctgta gaaaaactga caccagctca ttgccaatct 1080
atagtaacat gggccatgcc tcagctcact aacagagctg tgcttccaac ccttgtggat 1140
cctgtgatca gagattcagt agatgagaag tacttgttcc aggttgcagc agtagccgtg 1200
ttgtgtattc aaccagagcc aagttaccgc cctctcataa cagatgttgt gcactctctc 1260
gtcccattag ttcctcttga gcttggaggg acactaagag ttccacagcc tacaactccc 1320
agaggtcaac gacaaggccc atcaaagaaa ctgtttttgg atggtgctgc ctctgct 1377
<210> 68
<211> 459
<212> PRT
<213> 杨属
<400> 68
Met Phe Leu Phe Pro Lys Thr Val Pro Ile Trp Phe Phe His Leu Cys
1 5 10 15
Leu Val Ala Val His Ala Ile Gln Glu Asp Pro Pro Val Pro Ser Pro
20 25 30
Ser Pro Ser Leu Ile Ser Pro Ile Ser Thr Ser Met Ala Ala Phe Ser
35 40 45
Pro Gly Val Glu Ser Glu Met Gly Ile Lys Asp His Pro Gln His Asp
50 55 60
Asp Leu His Arg Lys Ile Ile Leu Leu Leu Thr Val Ala Cys Cys Ile
65 70 75 80
Leu Val Ile Ile Leu Leu Ser Leu Cys Ser Cys Phe Ile Tyr Tyr Lys
85 90 95
Lys Ser Ser Gln Lys Lys Lys Ala Thr Arg Cys Ser Asp Val Glu Lys
100 105 110
Gly Leu Ser Leu Ala Pro Phe Leu Gly Lys Phe Ser Ser Leu Lys Met
115 120 125
Val Ser Asn Arg Gly Ser Val Ser Leu Ile Glu Tyr Lys Ile Leu Glu
130 135 140
Lys Gly Thr Asn Asn Phe Gly Asp Asp Lys Leu Leu Gly Lys Gly Gly
145 150 155 160
Phe Gly Arg Val Tyr Lys Ala Val Met Glu Asp Asp Ser Ser Ala Ala
165 170 175
Val Lys Lys Leu Asp Cys Ala Thr Asp Asp Ala Gln Arg Glu Phe Glu
180 185 190
Asn Glu Val Asp Leu Leu Ser Lys Phe His His Pro Asn Ile Ile Ser
195 200 205
Ile Val Gly Phe Ser Val His Glu Glu Met Gly Phe Ile Ile Tyr Glu
210 215 220
Leu Met Pro Asn Gly Cys Leu Glu Asp Leu Leu His Gly Pro Ser Arg
225 230 235 240
Gly Ser Ser Leu Asn Trp His Leu Arg Leu Lys Ile Ala Leu Asp Thr
245 250 255
Ala Arg Gly Leu Glu Tyr Leu His Glu Phe Cys Lys Pro Ala Val Ile
260 265 270
His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ala Asn Phe Asn
275 280 285
Ala Lys Leu Ser Asp Phe Gly Leu Ala Val Ala Asp Ser Ser His Asn
290 295 300
Lys Lys Lys Leu Lys Leu Ser Gly Thr Val Gly Tyr Val Ala Pro Glu
305 310 315 320
Tyr Met Leu Asp Gly Glu Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe
325 330 335
Gly Val Val Leu Leu Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys
340 345 350
Leu Thr Pro Ala His Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln
355 360 365
Leu Thr Asn Arg Ala Val Leu Pro Thr Leu Val Asp Pro Val Ile Arg
370 375 380
Asp Ser Val Asp Glu Lys Tyr Leu Phe Gln Val Ala Ala Val Ala Val
385 390 395 400
Leu Cys Ile Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val
405 410 415
Val His Ser Leu Val Pro Leu Val Pro Leu Glu Leu Gly Gly Thr Leu
420 425 430
Arg Val Pro Gln Pro Thr Thr Pro Arg Gly Gln Arg Gln Gly Pro Ser
435 440 445
Lys Lys Leu Phe Leu Asp Gly Ala Ala Ser Ala
450 455
<210> 69
<211> 693
<212> DNA
<213> 甘蔗
<400> 69
gctgctgcgg tgaagagatt ggatggtggg gctggggcac atgattgcga gaaggaattc 60
gagaatgagt tagatttgct tggaaagatt cggcatccga acattgtgtc ccttgtgggc 120
ttctgtattc atgaggagaa ccgtttcatt gtttatgagc tgatagagaa tgggtcgttg 180
gattcacaac ttcatgggcc atcacatggt tcagctctga gctggcatat tcggatgaag 240
attgctcttg acacggcaag gggattagag tacctgcatg agcactgcaa cccaccagtt 300
atccataggg atctgaagtc atctaacata cttttagatt cagacttcag tgctaagatt 360
tcagattttg gccttgcggt gattagtggg aatcacagca aagggaattt aaagctttct 420
gggactatgg gctatgtggc ccctgagtac ttattggatg ggaagttgac tgagaagagc 480
gatgtatatg cgtttggggt ggtacttcta gaacttctac tgggaaggaa acctgttgag 540
aagatggcac aatctcaatg ccaatcaatt gttacatggg ccatgcctca gctaactgat 600
agatccaaac tccctaacat aattgatccc atgatcaaga acacaatgga tctgaaacac 660
ttgtaccaag ttgctgcaat ggctgtgctc tga 693
<210> 70
<211> 230
<212> PRT
<213> 甘蔗
<400> 70
Ala Ala Ala Val Lys Arg Leu Asp Gly Gly Ala Gly Ala His Asp Cys
1 5 10 15
Glu Lys Glu Phe Glu Asn Glu Leu Asp Leu Leu Gly Lys Ile Arg His
20 25 30
Pro Asn Ile Val Ser Leu Val Gly Phe Cys Ile His Glu Glu Asn Arg
35 40 45
Phe Ile Val Tyr Glu Leu Ile Glu Asn Gly Ser Leu Asp Ser Gln Leu
50 55 60
His Gly Pro Ser His Gly Ser Ala Leu Ser Trp His Ile Arg Met Lys
65 70 75 80
Ile Ala Leu Asp Thr Ala Arg Gly Leu Glu Tyr Leu His Glu His Cys
85 90 95
Asn Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu
100 105 110
Asp Ser Asp Phe Ser Ala Lys Ile Ser Asp Phe Gly Leu Ala Val Ile
115 120 125
Ser Gly Asn His Ser Lys Gly Asn Leu Lys Leu Ser Gly Thr Met Gly
130 135 140
Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Glu Lys Ser
145 150 155 160
Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Gly Arg
165 170 175
Lys Pro Val Glu Lys Met Ala Gln Ser Gln Cys Gln Ser Ile Val Thr
180 185 190
Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile Ile
195 200 205
Asp Pro Met Ile Lys Asn Thr Met Asp Leu Lys His Leu Tyr Gln Val
210 215 220
Ala Ala Met Ala Val Leu
225 230
<210> 71
<211> 414
<212> DNA
<213> 黄鹰苜蓿
<400> 71
accctcggtt atgtagctcc tgagtatctg ttagatggta agttaacaga gaaaagcgat 60
gtgtatgggt ttggagtagt gttactcgag cttctgcttg ggaagaagcc tatggagaaa 120
gtggcaacaa cagcaactca gtgccagatg atagtcacat ggaccatgcc tcagctcact 180
gacagaacga aacttccgaa tatcgtggat ccggtgatca gaaactccat ggatttaaag 240
cacttgtacc aggttgctgc tgtggcagta ttgtgtgtgc agccagaacc gagttatcgg 300
ccattgataa ctgatatttt gcattctctt gtgccccttg tccctgttga gcttggtggg 360
acgctcagga actcgataac aatggctaca acaacaatat ctcctgaaag ctaa 414
<210> 72
<211> 137
<212> PRT
<213> 黄鹰苜蓿
<400> 72
Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr
1 5 10 15
Glu Lys Ser Asp Val Tyr Gly Phe Gly Val Val Leu Leu Glu Leu Leu
20 25 30
Leu Gly Lys Lys Pro Met Glu Lys Val Ala Thr Thr Ala Thr Gln Cys
35 40 45
Gln Met Ile Val Thr Trp Thr Met Pro Gln Leu Thr Asp Arg Thr Lys
50 55 60
Leu Pro Asn Ile Val Asp Pro Val Ile Arg Asn Ser Met Asp Leu Lys
65 70 75 80
His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu
85 90 95
Pro Ser Tyr Arg Pro Leu Ile Thr Asp Ile Leu His Ser Leu Val Pro
100 105 110
Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Asn Ser Ile Thr Met
115 120 125
Ala Thr Thr Thr Ile Ser Pro Glu Ser
130 135
<210> 73
<211> 1140
<212> DNA
<213> 普通小麦
<220>
<221> 其他特征
<222> (1000)..(1000)
<223> n是a, c, g,或者t
<220>
<221> 其他特征
<222> (1080)..(1080)
<223> n是a, c, g,或者t
<220>
<221> 其他特征
<222> (1088)..(1088)
<223> n是a, c, g,或者t
<400> 73
cggcacgagg ggctggtggc catgatcgag tacccgtcgc tggaggcggc gacgggcaag 60
ttcagcgaga gcaacgtgct cggcgtcggc gggttcggct gcgtctacaa ggcggcgttc 120
gacggcggcg ccaccgccgc cgtgaagagg ctcgaaggcg gcgagccgga ctgcgagaag 180
gagttcgaga atgagctgga cttgcttggc aggatcaggc acccaaacat agtgtccctc 240
ctgggcttct gcgtccatgg tggcaatcac tacattgttt atgagctcat ggagaaggga 300
tcattggaga cacaactgca tgggccttca catggatcgg ctatgagctg gcacgtccgg 360
atgaagatcg cgctcgacac ggcgagggga ttagagtatc ttcatgagca ctgcaatcca 420
ccagtcatcc atagggatct gaaatcgtct aatatactct tggattcaga cttcaatgct 480
aagattgcag attttggcct tgcagtgaca agtgggaatc ttgacaaagg gaacctgaag 540
atctctggga ccttgggata tgtagctccc gagtacttat tagatgggaa gttgaccgag 600
aagagcgacg tctacgcgtt tggagtagtg cttctagagc tcctgatggg gaggaagcct 660
gttgagaaga tgtcaccatc tcagtgccaa tcaattgtgt catgggccat gcctcagcta 720
accgacagat cgaagctacc caacatcatc gacccggtga tcaaggacac aatggaccca 780
aagcatttat accaagttgc ggcggtggcc gttctatgcg tgcagcccga accgagttac 840
agaccgctga taacagacgt tctccactcc cttgttcctc tggtacccgc ggatctcggg 900
gggaacgctc agagttacag agccgcattc tccacaccaa atgtaccatc cctcttgaga 960
agtgatccta caagtttcgt cgaagcgggg aaagcgaatn tatacggtcc agcggtagat 1020
ggctgttatt ttggtactta tatctcaccc tgtcctgctg cttatcttag gatgagtgan 1080
gagctccnac ctgctgcttt tgctggttgg gcagagagaa tacagttctg gttaggattg 1140
<210> 74
<211> 380
<212> PRT
<213> 普通小麦
<220>
<221> 其他特征
<222> (334)..(334)
<223> Xaa可以是任何天然存在的氨基酸
<220>
<221> 其他特征
<222> (360)..(360)
<223> Xaa可以是任何天然存在的氨基酸
<220>
<221> 其他特征
<222> (363)..(363)
<223> Xaa可以是任何天然存在的氨基酸
<400> 74
Arg His Glu Gly Leu Val Ala Met Ile Glu Tyr Pro Ser Leu Glu Ala
1 5 10 15
Ala Thr Gly Lys Phe Ser Glu Ser Asn Val Leu Gly Val Gly Gly Phe
20 25 30
Gly Cys Val Tyr Lys Ala Ala Phe Asp Gly Gly Ala Thr Ala Ala Val
35 40 45
Lys Arg Leu Glu Gly Gly Glu Pro Asp Cys Glu Lys Glu Phe Glu Asn
50 55 60
Glu Leu Asp Leu Leu Gly Arg Ile Arg His Pro Asn Ile Val Ser Leu
65 70 75 80
Leu Gly Phe Cys Val His Gly Gly Asn His Tyr Ile Val Tyr Glu Leu
85 90 95
Met Glu Lys Gly Ser Leu Glu Thr Gln Leu His Gly Pro Ser His Gly
100 105 110
Ser Ala Met Ser Trp His Val Arg Met Lys Ile Ala Leu Asp Thr Ala
115 120 125
Arg Gly Leu Glu Tyr Leu His Glu His Cys Asn Pro Pro Val Ile His
130 135 140
Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asp Phe Asn Ala
145 150 155 160
Lys Ile Ala Asp Phe Gly Leu Ala Val Thr Ser Gly Asn Leu Asp Lys
165 170 175
Gly Asn Leu Lys Ile Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr
180 185 190
Leu Leu Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly
195 200 205
Val Val Leu Leu Glu Leu Leu Met Gly Arg Lys Pro Val Glu Lys Met
210 215 220
Ser Pro Ser Gln Cys Gln Ser Ile Val Ser Trp Ala Met Pro Gln Leu
225 230 235 240
Thr Asp Arg Ser Lys Leu Pro Asn Ile Ile Asp Pro Val Ile Lys Asp
245 250 255
Thr Met Asp Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu
260 265 270
Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu
275 280 285
His Ser Leu Val Pro Leu Val Pro Ala Asp Leu Gly Gly Asn Ala Gln
290 295 300
Ser Tyr Arg Ala Ala Phe Ser Thr Pro Asn Val Pro Ser Leu Leu Arg
305 310 315 320
Ser Asp Pro Thr Ser Phe Val Glu Ala Gly Lys Ala Asn Xaa Tyr Gly
325 330 335
Pro Ala Val Asp Gly Cys Tyr Phe Gly Thr Tyr Ile Ser Pro Cys Pro
340 345 350
Ala Ala Tyr Leu Arg Met Ser Xaa Glu Leu Xaa Pro Ala Ala Phe Ala
355 360 365
Gly Trp Ala Glu Arg Ile Gln Phe Trp Leu Gly Leu
370 375 380
<210> 75
<211> 978
<212> DNA
<213> 葡萄
<400> 75
atgaaagtga ttgggagaaa gggttatgtc tcttttattg attataaggt actagaaact 60
gcaacaaaca attttcagga aagtaatatc ctgggtgagg gcgggtttgg ttgcgtctac 120
aaggcgcggt tggatgataa ctcccatgtg gctgtgaaga agatagatgg tagaggccag 180
gatgctgaga gagaatttga gaatgaggtg gatttgttga ctaaaattca gcacccaaat 240
ataatttctc tcctgggtta cagcagtcat gaggagtcaa agtttcttgt ctatgagctg 300
atgcagaatg gatctctgga aactgaattg cacggacctt ctcatggatc atctctaact 360
tggcatattc gaatgaaaat cgctctggat gcagcaagag gattagagta tctacatgag 420
cactgcaacc caccagtcat ccatagagat cttaaatcat ctaatattct tctggattca 480
aacttcaatg ccaagctttc ggattttggt ctagctgtaa ttgatgggcc tcaaaacaag 540
aacaacttga agctttcagg caccctgggt tatctagctc ctgagtatct tttagatggt 600
aaactgactg ataagagtga tgtgtatgca tttggagtgg tgcttctaga gctactactg 660
ggaagaaagc ctgtggaaaa actggcacca gctcaatgcc agtccattgt cacatgggcc 720
atgccacagc tgactgacag atcaaagctc ccaggcatcg ttgaccctgt ggtcagagac 780
acgatggatc taaagcattt ataccaagtt gctgctgtag ctgtgctatg tgtgcaacca 840
gaaccaagtt accggccatt gataacagat gttctgcact ccctcatccc actcgttcca 900
gttgagttgg gagggatgct aaaagttacc cagcaagcgc cgcctatcaa caccactgca 960
ccttctgctg gaggttga 978
<210> 76
<211> 325
<212> PRT
<213> 葡萄
<400> 76
Met Lys Val Ile Gly Arg Lys Gly Tyr Val Ser Phe Ile Asp Tyr Lys
1 5 10 15
Val Leu Glu Thr Ala Thr Asn Asn Phe Gln Glu Ser Asn Ile Leu Gly
20 25 30
Glu Gly Gly Phe Gly Cys Val Tyr Lys Ala Arg Leu Asp Asp Asn Ser
35 40 45
His Val Ala Val Lys Lys Ile Asp Gly Arg Gly Gln Asp Ala Glu Arg
50 55 60
Glu Phe Glu Asn Glu Val Asp Leu Leu Thr Lys Ile Gln His Pro Asn
65 70 75 80
Ile Ile Ser Leu Leu Gly Tyr Ser Ser His Glu Glu Ser Lys Phe Leu
85 90 95
Val Tyr Glu Leu Met Gln Asn Gly Ser Leu Glu Thr Glu Leu His Gly
100 105 110
Pro Ser His Gly Ser Ser Leu Thr Trp His Ile Arg Met Lys Ile Ala
115 120 125
Leu Asp Ala Ala Arg Gly Leu Glu Tyr Leu His Glu His Cys Asn Pro
130 135 140
Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser
145 150 155 160
Asn Phe Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Val Ile Asp Gly
165 170 175
Pro Gln Asn Lys Asn Asn Leu Lys Leu Ser Gly Thr Leu Gly Tyr Leu
180 185 190
Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp Val
195 200 205
Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Leu Gly Arg Lys Pro
210 215 220
Val Glu Lys Leu Ala Pro Ala Gln Cys Gln Ser Ile Val Thr Trp Ala
225 230 235 240
Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Gly Ile Val Asp Pro
245 250 255
Val Val Arg Asp Thr Met Asp Leu Lys His Leu Tyr Gln Val Ala Ala
260 265 270
Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile
275 280 285
Thr Asp Val Leu His Ser Leu Ile Pro Leu Val Pro Val Glu Leu Gly
290 295 300
Gly Met Leu Lys Val Thr Gln Gln Ala Pro Pro Ile Asn Thr Thr Ala
305 310 315 320
Pro Ser Ala Gly Gly
325
<210> 77
<211> 1377
<212> DNA
<213> 玉米
<400> 77
atgccgccgc catcgccgct cctccgttcc tccgccttcg tcgtcttgct gctcctggtg 60
tgtcgcccgt tgttggtcgc caatgggagg gccacgccgc cttctccggg atggccaccg 120
gcggctcagc ccgcgctgca gcctgcaccc accgccagcg gcggcgtggc ctccgtgctt 180
ccttcggccg tggcgcctcc tcccttaggt gtggttgtgg cggagaggca ccaccacctc 240
agcagggagc tcgtcgctgc cattatcctc tcatccgtcg ccagcgtcgt gatccccatt 300
gccgcgctgt atgccttctt gctgtggcga cgatcacggc gagccctggt ggattccaag 360
gacacccaga gcatagatac cgcaaggatt gcttttgcgc cgatgttgaa cagctttggc 420
tcgtacaaga ctaccaagaa gagtgccgcg gcgatgatgg attacacatc tttggaggca 480
gcgacagaaa acttcagtga gagcaatgtc cttggatttg gtgggtttgg gtctgtgtac 540
aaagccaatt ttgatgggag gtttgctgct gcggtgaaga gactggatgg tggggcacat 600
gattgcaaga aggaattcga gaatgagcta gacttgcttg ggaagattcg acatccgaac 660
atcgtgtccc ttgtgggctt ctgcattcat gaggagaacc gtttcgttgt ttatgagctg 720
atggagagtg ggtcgttgga ttcgcaactt catgggccat cacatggttc agctctgagc 780
tggcatattc ggatgaagat tgctctcgac acagcaaggg gattagagta cctgcatgag 840
cactgcaacc caccggttat ccatagggat cttaagtcat ctaacatact tttagattca 900
gacttcagcg ctaagatttc agactttggc ctggcagtga ctagtgggaa tcacagcaaa 960
gggaatttaa agctttctgg gactatgggc tatgtggctc ctgagtactt attagatggg 1020
aagctgactg agaagagcga tgtatacgcg tttggggtag tacttctaga actcctgctg 1080
ggaaggaaac ctgtcgagaa gatggcacaa tctcagtgcc gatcaatcgt tacatgggcc 1140
atgcctcagc taactgatag atccaagctc ccgaacataa ttgatcccat gatcaagaac 1200
acaatggatc tgaaacactt gtaccaagtt gctgcagtgg ccgtgctctg cgtgcagcca 1260
gagccgagtt acaggccact gatcaccgac gtgcttcact cactggtacc tctagtgccc 1320
acggagcttg gaggaacgct gaggatcggc ccggaatcgc cctacctacg ctactaa 1377
<210> 78
<211> 458
<212> PRT
<213> 玉米
<400> 78
Met Pro Pro Pro Ser Pro Leu Leu Arg Ser Ser Ala Phe Val Val Leu
1 5 10 15
Leu Leu Leu Val Cys Arg Pro Leu Leu Val Ala Asn Gly Arg Ala Thr
20 25 30
Pro Pro Ser Pro Gly Trp Pro Pro Ala Ala Gln Pro Ala Leu Gln Pro
35 40 45
Ala Pro Thr Ala Ser Gly Gly Val Ala Ser Val Leu Pro Ser Ala Val
50 55 60
Ala Pro Pro Pro Leu Gly Val Val Val Ala Glu Arg His His His Leu
65 70 75 80
Ser Arg Glu Leu Val Ala Ala Ile Ile Leu Ser Ser Val Ala Ser Val
85 90 95
Val Ile Pro Ile Ala Ala Leu Tyr Ala Phe Leu Leu Trp Arg Arg Ser
100 105 110
Arg Arg Ala Leu Val Asp Ser Lys Asp Thr Gln Ser Ile Asp Thr Ala
115 120 125
Arg Ile Ala Phe Ala Pro Met Leu Asn Ser Phe Gly Ser Tyr Lys Thr
130 135 140
Thr Lys Lys Ser Ala Ala Ala Met Met Asp Tyr Thr Ser Leu Glu Ala
145 150 155 160
Ala Thr Glu Asn Phe Ser Glu Ser Asn Val Leu Gly Phe Gly Gly Phe
165 170 175
Gly Ser Val Tyr Lys Ala Asn Phe Asp Gly Arg Phe Ala Ala Ala Val
180 185 190
Lys Arg Leu Asp Gly Gly Ala His Asp Cys Lys Lys Glu Phe Glu Asn
195 200 205
Glu Leu Asp Leu Leu Gly Lys Ile Arg His Pro Asn Ile Val Ser Leu
210 215 220
Val Gly Phe Cys Ile His Glu Glu Asn Arg Phe Val Val Tyr Glu Leu
225 230 235 240
Met Glu Ser Gly Ser Leu Asp Ser Gln Leu His Gly Pro Ser His Gly
245 250 255
Ser Ala Leu Ser Trp His Ile Arg Met Lys Ile Ala Leu Asp Thr Ala
260 265 270
Arg Gly Leu Glu Tyr Leu His Glu His Cys Asn Pro Pro Val Ile His
275 280 285
Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asp Phe Ser Ala
290 295 300
Lys Ile Ser Asp Phe Gly Leu Ala Val Thr Ser Gly Asn His Ser Lys
305 310 315 320
Gly Asn Leu Lys Leu Ser Gly Thr Met Gly Tyr Val Ala Pro Glu Tyr
325 330 335
Leu Leu Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly
340 345 350
Val Val Leu Leu Glu Leu Leu Leu Gly Arg Lys Pro Val Glu Lys Met
355 360 365
Ala Gln Ser Gln Cys Arg Ser Ile Val Thr Trp Ala Met Pro Gln Leu
370 375 380
Thr Asp Arg Ser Lys Leu Pro Asn Ile Ile Asp Pro Met Ile Lys Asn
385 390 395 400
Thr Met Asp Leu Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu
405 410 415
Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu
420 425 430
His Ser Leu Val Pro Leu Val Pro Thr Glu Leu Gly Gly Thr Leu Arg
435 440 445
Ile Gly Pro Glu Ser Pro Tyr Leu Arg Tyr
450 455
<210> 79
<211> 1188
<212> DNA
<213> 玉米
<400> 79
atgttgctcg cgtgtcctgc agtgatcatc gtggagcgcc accgtcattt ccaccgtgag 60
ctagtcatcg cctccatcct cgcctcaatc gccatggtcg cgattatcct ctccacgctg 120
tacgcgtgga tcccgcgcag gcggtcccgc cggctgcccc gcggcatgag cgcagacacc 180
gcgaggggga tcatgctggc gccgatcctg agcaagttca actcgctcaa gacgagcagg 240
aaggggctcg tggcgatgat cgagtacccg tcgctggagg cagcgacagg ggggttcagt 300
gagagcaacg tgctcggcgt aggcggcttc ggttgcgtct acaaggcagt cttcgatggc 360
ggcgttaccg cggcggtcaa gaggctggag ggaggtggcc ctgagtgcga gaaggaattc 420
gagaatgagc tggatctgct tggcaggatt cggcacccca acatcgtgtc cctgctgggc 480
ttttgtgttc acgaggggaa tcactacatt gtttatgagc tcatggagaa gggatccctg 540
gacacacagc tgcatggggc ctcacatgga tcagcgctga cctggcatat ccggatgaag 600
atcgcactcg acatggccag gggattagaa tacctccatg agcactgcag tccaccagtg 660
atccataggg atctgaagtc atctaacata cttttagatt ctgacttcaa tgctaagatt 720
tcagattttg gtcttgcagt gaccagtggg aacattgaca agggaagcat gaagctttct 780
gggaccttgg gttatgtggc ccctgagtac ctattagatg ggaagctgac tgaaaagagt 840
gacgtatatg catttggagt ggtgcttctt gagctactaa tgggaaggaa gcctgtcgag 900
aagatgagtc aaactcagtg ccaatcaatt gtgacgtggg ccatgccgca gctgactgac 960
agaacaaaac ttcccaacat agttgaccca gtgatcaggg acaccatgga tccaaagcat 1020
ttgtaccaag tggcagcagt ggcagttcta tgtgtgcaac cagaaccaag ttacagaccg 1080
ctgattactg atgttctcca ctctcttgtc cctctagtcc ctgtggagct cggagggaca 1140
ctgagggttg tagagccacc ttccccaaac ctaaaacatt ctccttgt 1188
<210> 80
<211> 396
<212> PRT
<213> 玉米
<400> 80
Met Leu Leu Ala Cys Pro Ala Val Ile Ile Val Glu Arg His Arg His
1 5 10 15
Phe His Arg Glu Leu Val Ile Ala Ser Ile Leu Ala Ser Ile Ala Met
20 25 30
Val Ala Ile Ile Leu Ser Thr Leu Tyr Ala Trp Ile Pro Arg Arg Arg
35 40 45
Ser Arg Arg Leu Pro Arg Gly Met Ser Ala Asp Thr Ala Arg Gly Ile
50 55 60
Met Leu Ala Pro Ile Leu Ser Lys Phe Asn Ser Leu Lys Thr Ser Arg
65 70 75 80
Lys Gly Leu Val Ala Met Ile Glu Tyr Pro Ser Leu Glu Ala Ala Thr
85 90 95
Gly Gly Phe Ser Glu Ser Asn Val Leu Gly Val Gly Gly Phe Gly Cys
100 105 110
Val Tyr Lys Ala Val Phe Asp Gly Gly Val Thr Ala Ala Val Lys Arg
115 120 125
Leu Glu Gly Gly Gly Pro Glu Cys Glu Lys Glu Phe Glu Asn Glu Leu
130 135 140
Asp Leu Leu Gly Arg Ile Arg His Pro Asn Ile Val Ser Leu Leu Gly
145 150 155 160
Phe Cys Val His Glu Gly Asn His Tyr Ile Val Tyr Glu Leu Met Glu
165 170 175
Lys Gly Ser Leu Asp Thr Gln Leu His Gly Ala Ser His Gly Ser Ala
180 185 190
Leu Thr Trp His Ile Arg Met Lys Ile Ala Leu Asp Met Ala Arg Gly
195 200 205
Leu Glu Tyr Leu His Glu His Cys Ser Pro Pro Val Ile His Arg Asp
210 215 220
Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asp Phe Asn Ala Lys Ile
225 230 235 240
Ser Asp Phe Gly Leu Ala Val Thr Ser Gly Asn Ile Asp Lys Gly Ser
245 250 255
Met Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu
260 265 270
Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly Val Val
275 280 285
Leu Leu Glu Leu Leu Met Gly Arg Lys Pro Val Glu Lys Met Ser Gln
290 295 300
Thr Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp
305 310 315 320
Arg Thr Lys Leu Pro Asn Ile Val Asp Pro Val Ile Arg Asp Thr Met
325 330 335
Asp Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val
340 345 350
Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser
355 360 365
Leu Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Val Val
370 375 380
Glu Pro Pro Ser Pro Asn Leu Lys His Ser Pro Cys
385 390 395
<210> 81
<211> 1086
<212> DNA
<213> 棉
<400> 81
atgaagaaga agcttgtgct gcatctgctt cttttccttg tttgtgctct tgaaaacatt 60
gttttggccg tacaaggccc tgcttcatca cccatttcta ctcccatctc tgcttcaatg 120
gctgccttct ctccagctgg gattcaactt ggaggtgagg agcacaagaa aatggatcca 180
accaagaaaa tgttattagc tctcattctt gcttgctctt cattgggtgc aattatctct 240
tccttgttct gtttatggat ttattacagg aagaattcaa gcaaatcctc taaaaatggc 300
gctaagagct cagatggtga aaaagggaat ggtttggcac catatttggg taaattcaag 360
tctatgagga cggtttccaa agagggttat gcttcgttta tggactataa gatacttgaa 420
aaagctacaa acaagttcca tcatggtaac attctgggtg agggtggatt tggatgtgtt 480
tacaaggctc aattcaatga tggttcttat gctgctgtta agaagttgga ctgtgcaagc 540
caagatgctg aaaaagaata tgagaatgag gtgggtttgc tatgtagatt taagcattcc 600
aatataattt cactgttggg ttatagcagt gataacgata caaggtttat tgtttatgag 660
ttgatggaaa atggttcttt ggaaactcaa ttacatggac cttctcatgg ttcatcatta 720
acttggcata ggaggatgaa aattgctttg gatacagcaa gaggattaga atatctacat 780
gagcattgca atccaccagt catccataga gatctgaaat catctaatat acttttggat 840
ttggacttca atgcaaagct ttcagatttt ggtcttgcag taactgatgc ggcaacaaac 900
aagaataact tgaagctttc gggtacttta ggttatctag ctccagaata ccttttagat 960
ggtaaattaa cagataagag tgatgtttat gcattcggtg ttgtgctgct cgaacttcta 1020
ttgggacgaa aggctgttga aaaattatca caactcagtg ccaatcttag gtccatttgg 1080
gcatag 1086
<210> 82
<211> 361
<212> PRT
<213> 棉
<400> 82
Met Lys Lys Lys Leu Val Leu His Leu Leu Leu Phe Leu Val Cys Ala
1 5 10 15
Leu Glu Asn Ile Val Leu Ala Val Gln Gly Pro Ala Ser Ser Pro Ile
20 25 30
Ser Thr Pro Ile Ser Ala Ser Met Ala Ala Phe Ser Pro Ala Gly Ile
35 40 45
Gln Leu Gly Gly Glu Glu His Lys Lys Met Asp Pro Thr Lys Lys Met
50 55 60
Leu Leu Ala Leu Ile Leu Ala Cys Ser Ser Leu Gly Ala Ile Ile Ser
65 70 75 80
Ser Leu Phe Cys Leu Trp Ile Tyr Tyr Arg Lys Asn Ser Ser Lys Ser
85 90 95
Ser Lys Asn Gly Ala Lys Ser Ser Asp Gly Glu Lys Gly Asn Gly Leu
100 105 110
Ala Pro Tyr Leu Gly Lys Phe Lys Ser Met Arg Thr Val Ser Lys Glu
115 120 125
Gly Tyr Ala Ser Phe Met Asp Tyr Lys Ile Leu Glu Lys Ala Thr Asn
130 135 140
Lys Phe His His Gly Asn Ile Leu Gly Glu Gly Gly Phe Gly Cys Val
145 150 155 160
Tyr Lys Ala Gln Phe Asn Asp Gly Ser Tyr Ala Ala Val Lys Lys Leu
165 170 175
Asp Cys Ala Ser Gln Asp Ala Glu Lys Glu Tyr Glu Asn Glu Val Gly
180 185 190
Leu Leu Cys Arg Phe Lys His Ser Asn Ile Ile Ser Leu Leu Gly Tyr
195 200 205
Ser Ser Asp Asn Asp Thr Arg Phe Ile Val Tyr Glu Leu Met Glu Asn
210 215 220
Gly Ser Leu Glu Thr Gln Leu His Gly Pro Ser His Gly Ser Ser Leu
225 230 235 240
Thr Trp His Arg Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
245 250 255
Glu Tyr Leu His Glu His Cys Asn Pro Pro Val Ile His Arg Asp Leu
260 265 270
Lys Ser Ser Asn Ile Leu Leu Asp Leu Asp Phe Asn Ala Lys Leu Ser
275 280 285
Asp Phe Gly Leu Ala Val Thr Asp Ala Ala Thr Asn Lys Asn Asn Leu
290 295 300
Lys Leu Ser Gly Thr Leu Gly Tyr Leu Ala Pro Glu Tyr Leu Leu Asp
305 310 315 320
Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
325 330 335
Leu Glu Leu Leu Leu Gly Arg Lys Ala Val Glu Lys Leu Ser Gln Leu
340 345 350
Ser Ala Asn Leu Arg Ser Ile Trp Ala
355 360
<210> 83
<211> 1089
<212> DNA
<213> 番茄
<220>
<221> 其他特征
<222> (1024)..(1024)
<223> n是a, c, g,或者t
<400> 83
ggagtgggaa ttgagaagca gccacccacc cacccaccct atggataaaa atagaaggct 60
gttgatagca ctcattgtag cttctactgc attaggacta atctttatct tcatcatttt 120
attctggatt tttcacaaaa gatttcacac ctcagatgtt gtgaagggaa tgagtaggaa 180
aacattggtt tctttaatgg actacaacat acttgaatca gccaccaaca aatttaaaga 240
aactgagatt ttaggtgagg ggggttttgg atgtgtgtac aaagctaaat tggaagacaa 300
tttttatgta gctgtcaaga aactaaccca aaattccatt aaagaatttg agactgagtt 360
agagttgttg agtcaaatgc aacatcccaa tattatttca ttgttgggat attgcatcca 420
cagtgaaaca agattgcttg tctatgaact catgcaaaat ggatcactag aaactcaatt 480
acatgggcct tcccgtggat cagcattaac ttggcatcgc aggataaaaa ttgcccttga 540
tgcagcaaga ggaatagaat atttacatga gcagcgccat ccccctgtaa ttcatagaga 600
tctgaaatca tctaatattc ttttagattc caacttcaat gcaaaggtaa aactttttat 660
gtagaaatta tactaggact agttttccct ctattaatct tgtgttgtga ttaattttag 720
ctgtcagatt ttggtcttgc tgtgttgagt ggggctcaaa acaaaaacaa tatcaagctt 780
tctggaacta taggttatgt agcgcctgaa tacatgttag atggaaaatt aagtgataaa 840
agtgatgttt atggttttgg agtagtactt ttggagctgt tattgggaag gcggcctgta 900
gaaaaggagg cagccactga atgtcagtct atagtgacat gggccatgcc tcagctgaca 960
gatagatcaa agcttccaaa cattgttgat cctgtcatac aaaacacaat ggatttaaag 1020
catntgtatc aggttgctgc aggtgctcta ttatgtgttc agccagagcc aagctatcgt 1080
cccgtataa 1089
<210> 84
<211> 875
<212> DNA
<213> 耧斗菜
<400> 84
gagtatcagt tattggaagc tgcaactgac aattttagtg agagtaatat tttgggagaa 60
ggtggatttg gatgtgttta caaagcatgt tttgataaca actttctcgc tgctgtcaag 120
agaatggatg ttggtgggca agatgcagaa agagaatttg agaaagaagt agatttgttg 180
aatagaattc agcatccgga tataatttcc ctgttgggtt attgtattca tgatgagaca 240
aggttcatca tttatgaact aatgcagaac ggatctttgg aaagacaatt acatggacct 300
tctcatggat cggctttaac ttggcatatc cggatgaaaa ttgcacttga tacagcaaga 360
gcattagaat atctccatga gaattgcaac cctcctgtga tccacagaga tctgaaatca 420
tccaatatac ttttggattc taatttcaag gccaagattt cagattttgg tcttgctgta 480
atttctggga gtcaaaacaa gaacaacatt aagctttcag gcactcttgg ttatgttgct 540
ccagaatatc tgttagatgg taaattgact gacaaaagtg atgtctatgc ttttggggtt 600
atccttctag aactcctaat gggaagaaaa cctgtagaga aaatgacacg aactcagtgt 660
caatctatcg ttacatgggc catgcctcaa ctcactgata gatcaaagct accaaacatt 720
gttgatcctg tgattaaaaa cacaatggat ttgaagcatt tgttccaagt tgctgctgta 780
gctgtactgt gtgtacaacc agaaccaagt taccggccat taatcacaga tgtccttcac 840
tccctcgtac cccttgttcc tgtcgatctt ggagg 875
<210> 85
<211> 292
<212> PRT
<213> 耧斗菜
<400> 85
Glu Tyr Gln Leu Leu Glu Ala Ala Thr Asp Asn Phe Ser Glu Ser Asn
1 5 10 15
Ile Leu Gly Glu Gly Gly Phe Gly Cys Val Tyr Lys Ala Cys Phe Asp
20 25 30
Asn Asn Phe Leu Ala Ala Val Lys Arg Met Asp Val Gly Gly Gln Asp
35 40 45
Ala Glu Arg Glu Phe Glu Lys Glu Val Asp Leu Leu Asn Arg Ile Gln
50 55 60
His Pro Asp Ile Ile Ser Leu Leu Gly Tyr Cys Ile His Asp Glu Thr
65 70 75 80
Arg Phe Ile Ile Tyr Glu Leu Met Gln Asn Gly Ser Leu Glu Arg Gln
85 90 95
Leu His Gly Pro Ser His Gly Ser Ala Leu Thr Trp His Ile Arg Met
100 105 110
Lys Ile Ala Leu Asp Thr Ala Arg Ala Leu Glu Tyr Leu His Glu Asn
115 120 125
Cys Asn Pro Pro Val Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu
130 135 140
Leu Asp Ser Asn Phe Lys Ala Lys Ile Ser Asp Phe Gly Leu Ala Val
145 150 155 160
Ile Ser Gly Ser Gln Asn Lys Asn Asn Ile Lys Leu Ser Gly Thr Leu
165 170 175
Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys
180 185 190
Ser Asp Val Tyr Ala Phe Gly Val Ile Leu Leu Glu Leu Leu Met Gly
195 200 205
Arg Lys Pro Val Glu Lys Met Thr Arg Thr Gln Cys Gln Ser Ile Val
210 215 220
Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile
225 230 235 240
Val Asp Pro Val Ile Lys Asn Thr Met Asp Leu Lys His Leu Phe Gln
245 250 255
Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg
260 265 270
Pro Leu Ile Thr Asp Val Leu His Ser Leu Val Pro Leu Val Pro Val
275 280 285
Asp Leu Gly Gly
290
<210> 86
<211> 696
<212> DNA
<213> 斑点矢车菊
<400> 86
tgtgctcatg atgagaccaa actacttgtt tacgaactta tgcacaatgg ttcgttagaa 60
actcaattac acggtccttc ttgtggatcc aatttaacat ggcattgtcg gatgaaaatt 120
gcgctagata tagcgagagg attggaatat ttacatgaac actgcaaacc atctgtgatt 180
catagagatt tgaagtcatc taacatcctt ttggattcaa aattcaatgc caagctttcg 240
gatttcggtc ttgctgtgat gaacggtgcc aataccaaaa acattaagct ttcggggacg 300
ttgggttacg tagctcccga gtatctttta aatgggaaat tgaccgataa aagtgacgtc 360
tacgcattcg gagttgtact tttagagctt ctactcaaaa ggcggcctgt cgaaaaacta 420
gcaccatccg agtgccagtc catcgtcact tgggctatgc cgcaactaac agacagaaca 480
aagcttccga gtgttataga tcccgtgatc agggacacga tggatcttaa acacttgtat 540
caagtggcgg ctgtggctgt gttgtgtgtt caaccggaac cgggataccg gccgttgata 600
accgacgtct tgcattctct ggttcctctc gtgccggttg aactcggagg gactctacga 660
gttgcggaaa caggttgcgg cacagttgac ttatga 696
<210> 87
<211> 231
<212> PRT
<213> 斑点矢车菊
<400> 87
Cys Ala His Asp Glu Thr Lys Leu Leu Val Tyr Glu Leu Met His Asn
1 5 10 15
Gly Ser Leu Glu Thr Gln Leu His Gly Pro Ser Cys Gly Ser Asn Leu
20 25 30
Thr Trp His Cys Arg Met Lys Ile Ala Leu Asp Ile Ala Arg Gly Leu
35 40 45
Glu Tyr Leu His Glu His Cys Lys Pro Ser Val Ile His Arg Asp Leu
50 55 60
Lys Ser Ser Asn Ile Leu Leu Asp Ser Lys Phe Asn Ala Lys Leu Ser
65 70 75 80
Asp Phe Gly Leu Ala Val Met Asn Gly Ala Asn Thr Lys Asn Ile Lys
85 90 95
Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asn Gly
100 105 110
Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu
115 120 125
Glu Leu Leu Leu Lys Arg Arg Pro Val Glu Lys Leu Ala Pro Ser Glu
130 135 140
Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Thr
145 150 155 160
Lys Leu Pro Ser Val Ile Asp Pro Val Ile Arg Asp Thr Met Asp Leu
165 170 175
Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro
180 185 190
Glu Pro Gly Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Val
195 200 205
Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Val Ala Glu Thr
210 215 220
Gly Cys Gly Thr Val Asp Leu
225 230
<210> 88
<211> 842
<212> DNA
<213> 菊苣
<400> 88
tggatttgga tgcgtttaaa agctcaactc aatgataact tattagttgc ggtcaaacga 60
ctagacaata aaagtcaaaa ttccatcaaa gaattccaga cggaagtgaa tattttgagt 120
aaaattcaac atccaaatat aattagtttg ttgggatatt gcgatcatga tgaaagcaag 180
ctacttgttt acgaattgat gcaaaatggt tctttagaaa ctcagttaca tgggccttct 240
tgtggatcca atttaacatg gtattgccgg atgaaaattg ccctagatat agcaagagga 300
ttggaatatt tacatgaaca ctccaaacca tctgtgattc atagagatct caaatcatct 360
aatatacttc ttgattcaaa tttcaatgca aagctttcgg attttggtct tgcggtgatg 420
gaaggtgcaa atagcaaaaa cattaaactt tcggggacat tgggatacgt agcacccgaa 480
tatcttttag atgggaaatt aaccgataaa agtgacgtgt atgcatttgg agtcgtactt 540
tttgagcttt tactcagaag acgacacgtt gaaaaactag aatcatcaca atcccgccaa 600
tctattgtca cttgggcgat gccactacta atggacagat cgaagcttcc gagtgtgata 660
gatcctgtga ttagggatac aatggatctt aaacatcttt atcaagtggc tgcggtggcg 720
gtgttgtgtg ttcaatcgga accgagttac cgtccgttga taaccgatgt tttacattct 780
cttgttcctc ttgtcccggt tgaacttgga gggacactta gagttgtaga aaagagtgtt 840
gt 842
<210> 89
<211> 281
<212> PRT
<213> 菊苣
<400> 89
Trp Ile Trp Met Arg Leu Lys Ala Gln Leu Asn Asp Asn Leu Leu Val
1 5 10 15
Ala Val Lys Arg Leu Asp Asn Lys Ser Gln Asn Ser Ile Lys Glu Phe
20 25 30
Gln Thr Glu Val Asn Ile Leu Ser Lys Ile Gln His Pro Asn Ile Ile
35 40 45
Ser Leu Leu Gly Tyr Cys Asp His Asp Glu Ser Lys Leu Leu Val Tyr
50 55 60
Glu Leu Met Gln Asn Gly Ser Leu Glu Thr Gln Leu His Gly Pro Ser
65 70 75 80
Cys Gly Ser Asn Leu Thr Trp Tyr Cys Arg Met Lys Ile Ala Leu Asp
85 90 95
Ile Ala Arg Gly Leu Glu Tyr Leu His Glu His Ser Lys Pro Ser Val
100 105 110
Ile His Arg Asp Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Asn Phe
115 120 125
Asn Ala Lys Leu Ser Asp Phe Gly Leu Ala Val Met Glu Gly Ala Asn
130 135 140
Ser Lys Asn Ile Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu
145 150 155 160
Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe
165 170 175
Gly Val Val Leu Phe Glu Leu Leu Leu Arg Arg Arg His Val Glu Lys
180 185 190
Leu Glu Ser Ser Gln Ser Arg Gln Ser Ile Val Thr Trp Ala Met Pro
195 200 205
Leu Leu Met Asp Arg Ser Lys Leu Pro Ser Val Ile Asp Pro Val Ile
210 215 220
Arg Asp Thr Met Asp Leu Lys His Leu Tyr Gln Val Ala Ala Val Ala
225 230 235 240
Val Leu Cys Val Gln Ser Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp
245 250 255
Val Leu His Ser Leu Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr
260 265 270
Leu Arg Val Val Glu Lys Ser Val Val
275 280
<210> 90
<211> 495
<212> DNA
<213> 甜瓜
<400> 90
attcttttag atgcaaactt caatgccaag ctttctgatt ttggcttgtc tgtcattgtt 60
ggagcacaaa acaagaatga tataaagctt tccggaacga tgggttatgt tgctcctgaa 120
tatcttttag atggtaaatt gactgataaa agtgatgtct atgcttttgg agttgtgctt 180
ttggagcttc ttttaggaag aaggcctgtt gaaaaactgg caccatctca atgtcaatcc 240
attgtcacat gggctatgcc tcaactcact gatagatcaa agttacccga tatcgttgat 300
ccggtgatca gacacacaat ggaccctaaa catttatttc aggttgctgc tgtcgccgtg 360
ctgtgtgtgc aaccagaacc gagctatcgt cccctaataa cagatctttt gcactctctt 420
attcctcttg ttcctgttga gctaggaggt actcacagat catcaacatc acaagctcct 480
gtggctccag cttag 495
<210> 91
<211> 164
<212> PRT
<213> 甜瓜
<400> 91
Ile Leu Leu Asp Ala Asn Phe Asn Ala Lys Leu Ser Asp Phe Gly Leu
1 5 10 15
Ser Val Ile Val Gly Ala Gln Asn Lys Asn Asp Ile Lys Leu Ser Gly
20 25 30
Thr Met Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr
35 40 45
Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu
50 55 60
Leu Gly Arg Arg Pro Val Glu Lys Leu Ala Pro Ser Gln Cys Gln Ser
65 70 75 80
Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro
85 90 95
Asp Ile Val Asp Pro Val Ile Arg His Thr Met Asp Pro Lys His Leu
100 105 110
Phe Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser
115 120 125
Tyr Arg Pro Leu Ile Thr Asp Leu Leu His Ser Leu Ile Pro Leu Val
130 135 140
Pro Val Glu Leu Gly Gly Thr His Arg Ser Ser Thr Ser Gln Ala Pro
145 150 155 160
Val Ala Pro Ala
<210> 92
<211> 375
<212> DNA
<213> 曲画眉草
<400> 92
gatgggaagc tcaccgagaa aagcgacgtg tacgcgtttg gcatagtgct tcttgagctg 60
ctaatgggaa ggaagcctgt tgagaagttg agtcaatctc agtgccaatc aattgtgact 120
tgggccatgc cccaactgac agacagatca aaacttccca acataattga cccagtgatc 180
agggacacaa tggatccaaa gcacttgtat caggttgcag cagtggctgt tctatgcgtg 240
caaccagaac cgagttacag accactgata acggatgttc tccactcttt agttcctcta 300
gtgcctgtgg agcttggtgg gacactaagg gttgcagagc caccgtcccc aaaccaaaat 360
cattctcctc gttga 375
<210> 93
<211> 124
<212> PRT
<213> 曲画眉草
<400> 93
Asp Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly Ile Val
1 5 10 15
Leu Leu Glu Leu Leu Met Gly Arg Lys Pro Val Glu Lys Leu Ser Gln
20 25 30
Ser Gln Cys Gln Ser Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp
35 40 45
Arg Ser Lys Leu Pro Asn Ile Ile Asp Pro Val Ile Arg Asp Thr Met
50 55 60
Asp Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val
65 70 75 80
Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser
85 90 95
Leu Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Val Ala
100 105 110
Glu Pro Pro Ser Pro Asn Gln Asn His Ser Pro Arg
115 120
<210> 94
<211> 414
<212> DNA
<213> 非洲菊
<400> 94
ggggttcatg gcaagaacaa tataaaactt tcaggaactt taggatatgt cgcgccggaa 60
taccttttag atggtaaact tactgataaa agtgacgttt atgcgtttgg agttgtgctt 120
ctcgagcttt tgataggacg aaaacccgtg gagaaaatgt caccatttca atgccaattt 180
atcgttacat gggcaatgcc tcagctaacg gacagatcga agcttcctaa tcttgtggat 240
cctgtgatta gagatactat ggacttgaag cccttatatc aagttgcggc tgtaactgtg 300
ttatgtgtac aacccgaacc aagttaccgc ccattaataa cggatgtttt gcattcgttc 360
atcccacttg tacctgctga tcttggaggg tcgttaaaag ttgtcgactt ttaa 414
<210> 95
<211> 137
<212> PRT
<213> 非洲菊
<400> 95
Gly Val His Gly Lys Asn Asn Ile Lys Leu Ser Gly Thr Leu Gly Tyr
1 5 10 15
Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp
20 25 30
Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu Ile Gly Arg Lys
35 40 45
Pro Val Glu Lys Met Ser Pro Phe Gln Cys Gln Phe Ile Val Thr Trp
50 55 60
Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Leu Val Asp
65 70 75 80
Pro Val Ile Arg Asp Thr Met Asp Leu Lys Pro Leu Tyr Gln Val Ala
85 90 95
Ala Val Thr Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu
100 105 110
Ile Thr Asp Val Leu His Ser Phe Ile Pro Leu Val Pro Ala Asp Leu
115 120 125
Gly Gly Ser Leu Lys Val Val Asp Phe
130 135
<210> 96
<211> 498
<212> DNA
<213> 向日葵
<400> 96
atcgtgttcc attttggttg ttgtctaaag ctttcagatt ttggtcttgc tgtaatggat 60
ggagcccaga acaaaaacaa catcaagctt tcagggacat tgggttatgt agctccagag 120
tatcttttag atggaaaact gaccgacaaa agtgatgtat atgcatttgg agttgtactt 180
ttagagcttc tacttggaag acggcctgta gaaaaactgg ccgcatctca atgccaatct 240
atcgtcactt gggccatgcc acagctaaca gacagatcaa agctcccaaa tattgtcgat 300
cctgtaatca gatatacgat ggatctcaaa cacttgtacc aagttgctgc cgtggcagtg 360
ctgtgtgtgc aaccagagcc aagttaccgg ccattaataa ccgatgtttt gcattctctt 420
atccctcttg ttccggtgga gctcggggga actctaaaag ctccacaaac aaggtcttcg 480
gtaacaaatg acccgtga 498
<210> 97
<211> 165
<212> PRT
<213> 向日葵
<400> 97
Ile Val Phe His Phe Gly Cys Cys Leu Lys Leu Ser Asp Phe Gly Leu
1 5 10 15
Ala Val Met Asp Gly Ala Gln Asn Lys Asn Asn Ile Lys Leu Ser Gly
20 25 30
Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp Gly Lys Leu Thr
35 40 45
Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu Leu Glu Leu Leu
50 55 60
Leu Gly Arg Arg Pro Val Glu Lys Leu Ala Ala Ser Gln Cys Gln Ser
65 70 75 80
Ile Val Thr Trp Ala Met Pro Gln Leu Thr Asp Arg Ser Lys Leu Pro
85 90 95
Asn Ile Val Asp Pro Val Ile Arg Tyr Thr Met Asp Leu Lys His Leu
100 105 110
Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln Pro Glu Pro Ser
115 120 125
Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu Ile Pro Leu Val
130 135 140
Pro Val Glu Leu Gly Gly Thr Leu Lys Ala Pro Gln Thr Arg Ser Ser
145 150 155 160
Val Thr Asn Asp Pro
165
<210> 98
<211> 612
<212> DNA
<213> 大花牵牛
<400> 98
cgtggatcaa ctttaagttg gcctctccga atgaaaattg ctttggatat tgcaagagga 60
ttagaatacc ttcacgagcg ttgcaacccc cctgtgatcc ataggcatct caaatcgtct 120
aatattcttc ttgattccag cttcaacgca aagatttctg attttggcct ttctgtaact 180
ggcggaaacc taagcaagaa cataaccaag atttcgggat cactgggtta tcttgctcca 240
gagtatctct tagacggtaa actaactgat aagagtgatg tgtatggttt tggcattatt 300
cttctagagc ttttgatggg taaaaggcca gtggagaaag tgggagaaac taagtgccaa 360
tcaatagtta catgggctat gccccagctt acggaccgat caaagcttcc gaatattgtt 420
gaccctacga tcaggaacac aatggatgtt aagcatttat atcaggttgc ggctgtagct 480
gtgttatgtg tgcaaccgga gccaagctat aggccattga taactgatgt actacactcc 540
ttcattccac ttgtaccaaa tgaactcggg gggtcgctta gggtagtgga ttctactccc 600
cattgctcat ag 612
<210> 99
<211> 203
<212> PRT
<213> 大花牵牛
<400> 99
Arg Gly Ser Thr Leu Ser Trp Pro Leu Arg Met Lys Ile Ala Leu Asp
1 5 10 15
Ile Ala Arg Gly Leu Glu Tyr Leu His Glu Arg Cys Asn Pro Pro Val
20 25 30
Ile His Arg His Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe
35 40 45
Asn Ala Lys Ile Ser Asp Phe Gly Leu Ser Val Thr Gly Gly Asn Leu
50 55 60
Ser Lys Asn Ile Thr Lys Ile Ser Gly Ser Leu Gly Tyr Leu Ala Pro
65 70 75 80
Glu Tyr Leu Leu Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Gly
85 90 95
Phe Gly Ile Ile Leu Leu Glu Leu Leu Met Gly Lys Arg Pro Val Glu
100 105 110
Lys Val Gly Glu Thr Lys Cys Gln Ser Ile Val Thr Trp Ala Met Pro
115 120 125
Gln Leu Thr Asp Arg Ser Lys Leu Pro Asn Ile Val Asp Pro Thr Ile
130 135 140
Arg Asn Thr Met Asp Val Lys His Leu Tyr Gln Val Ala Ala Val Ala
145 150 155 160
Val Leu Cys Val Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp
165 170 175
Val Leu His Ser Phe Ile Pro Leu Val Pro Asn Glu Leu Gly Gly Ser
180 185 190
Leu Arg Val Val Asp Ser Thr Pro His Cys Ser
195 200
<210> 100
<211> 708
<212> DNA
<213> NUPHAR ADVENA
<400> 100
ttagataatg gcggacccga ttgtcaacga gaattcgaga atgaggttga tttgatgagt 60
agaattaggc atccaaatgt ggtttcttta ttgggttatt gcattcatgg agaaaccagg 120
cttcttgtct atgaaatgat gcaaaacggg acgttggaat cgctattgca tggaccatca 180
catggatcct cactaacttg gcacattcgt atgaagatcg ccctcgacac agcaagaggc 240
ctcgagtatc tgcatgaaca ctgcgacccc tctgtgatcc accgtgacct gaagccttct 300
aacattcttt tggattccaa ctacaattcc aagctctcag actttggtct tgcagtcact 360
gttggaagcc agaatcaaac caacattaag attctaggga cactgggtta ccttgcacca 420
gagtacgttt tgaatggcaa attgacagag aaaagtgatg tgtttgcttt tggagttgtc 480
ctgttggagc ttctcatggg caagaaacca gtggagaaga tggcatcccc tccatgccaa 540
tccattgtca catgggcgat gcctcatctt actgacagaa ttaagcttcc aaatatcatt 600
gatcctgtta ttagaaacac catggatctg aaacacttgt accaggttgc agctgttgct 660
gttctctgcg tacaaccaga gccccagtta tcgtcctctg ataactga 708
<210> 101
<211> 235
<212> PRT
<213> NUPHAR ADVENA
<400> 101
Leu Asp Asn Gly Gly Pro Asp Cys Gln Arg Glu Phe Glu Asn Glu Val
1 5 10 15
Asp Leu Met Ser Arg Ile Arg His Pro Asn Val Val Ser Leu Leu Gly
20 25 30
Tyr Cys Ile His Gly Glu Thr Arg Leu Leu Val Tyr Glu Met Met Gln
35 40 45
Asn Gly Thr Leu Glu Ser Leu Leu His Gly Pro Ser His Gly Ser Ser
50 55 60
Leu Thr Trp His Ile Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly
65 70 75 80
Leu Glu Tyr Leu His Glu His Cys Asp Pro Ser Val Ile His Arg Asp
85 90 95
Leu Lys Pro Ser Asn Ile Leu Leu Asp Ser Asn Tyr Asn Ser Lys Leu
100 105 110
Ser Asp Phe Gly Leu Ala Val Thr Val Gly Ser Gln Asn Gln Thr Asn
115 120 125
Ile Lys Ile Leu Gly Thr Leu Gly Tyr Leu Ala Pro Glu Tyr Val Leu
130 135 140
Asn Gly Lys Leu Thr Glu Lys Ser Asp Val Phe Ala Phe Gly Val Val
145 150 155 160
Leu Leu Glu Leu Leu Met Gly Lys Lys Pro Val Glu Lys Met Ala Ser
165 170 175
Pro Pro Cys Gln Ser Ile Val Thr Trp Ala Met Pro His Leu Thr Asp
180 185 190
Arg Ile Lys Leu Pro Asn Ile Ile Asp Pro Val Ile Arg Asn Thr Met
195 200 205
Asp Leu Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val
210 215 220
Gln Pro Glu Pro Gln Leu Ser Ser Ser Asp Asn
225 230 235
<210> 102
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 102
tcggctcggc ccagaacaag atcgcaagac 30
<210> 103
<211> 34
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 103
ctacattctc tcctcgtatt attcctcgtt gact 34
<210> 104
<211> 32
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 104
actttcagat gagtggatca taaccctata ca 32
<210> 105
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 105
agatacaatg gatctcaaac acttatacca g 31
<210> 106
<211> 42
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 106
aaaggatcca tgggaagtgg tgaagaagat agatttgatg ct 42
<210> 107
<211> 40
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 107
tttctgcagt ctgtgaatca tcttgttaac cggagagtcc 40
<210> 108
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 108
tctgagtttt aatcgagcca agtcgtctca 30
<210> 109
<211> 53
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 109
tatcccggga aaatgagaga gcttcttctt cttcttcttc ttcattttca gtc 53
<210> 110
<211> 38
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 110
tttggatcct gtgaatcatc ttgttaaccg gagagtcc 38
<210> 111
<211> 41
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 111
atacccgggt ctgtgtcagg aatccaaatg ggaagtggtg a 41
<210> 112
<211> 41
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 112
aaaggatcct ctgtgtcagg aatccaaatg ggaagtggtg a 41
<210> 113
<211> 39
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 113
aaatctagac tgtgaatcat cttgttaacc ggagagtcc 39
<210> 114
<211> 35
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 114
atagagctcg caagaaccaa tctccaaaat ccatc 35
<210> 115
<211> 37
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 115
atagagctcg agggtcttga tatcgaaaaa ttgcacg 37
<210> 116
<211> 37
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 116
ataggatcct cgcaagaacc aatctccaaa atccatc 37
<210> 117
<211> 40
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 117
atatctagac tcgagggtct tgatatcgaa aaattgcacg 40
<210> 118
<211> 52
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 118
atatctagaa aatgagagag cttcttcttc ttcttcttct tcattttcag tc 52
<210> 119
<211> 47
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 119
ataggatcct gttaaaagcg atttataatt tacaccgttt tggtgta 47
<210> 120
<211> 41
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 120
atacccggga aaagtttttg atgaaattca atctaaagac t 41
<210> 121
<211> 1309
<212> DNA
<213> 拟南芥
<400> 121
aaaatgagag agcttcttct tcttcttctt cttcattttc agtctctaat tcttttgatg 60
atcttcatca ctgtctctgc ttcttctgct tcaaatcctt ctttagctcc tgtttactct 120
tccatggcta cattctctcc tcgaatccaa atgggaagtg gtgaagaaga tagatttgat 180
gctcataaga aacttctgat tggtctcata atcagtttct cttctcttgg ccttataatc 240
ttgttctgtt ttggcttttg ggtttatcgc aagaaccaat ctccaaaatc catcaacaac 300
tcagattctg agagtgggaa ttcattttcc ttgttaatga gacgacttgg ctcgattaaa 360
actcagagaa gaacttctat ccaaaagggt tacgtgcaat ttttcgatat caagaccctc 420
gagaaagcga caggcggttt taaagaaagt agtgtaatcg gacaaggcgg tttcggatgc 480
gtttacaagg gttgtttgga caataacgtt aaagcagcgg tcaagaagat cgagaacgtt 540
agccaagaag caaaacgaga atttcagaat gaagttgact tgttgagcaa gatccatcac 600
tcgaacgtta tatcattgtt gggctctgca agcgaaatca actcgagttt catcgtttat 660
gagcttatgg agaaaggatc attagatgaa cagttacatg ggccttctcg tggatcagct 720
ctaacatggc acatgcgtat gaagattgct cttgatacag ctagaggact agagtatctc 780
catgagcatt gtcgtccacc agttatccac agagatttga aatcttcgaa tattcttctt 840
gattcttcct tcaacgccaa gatttcagat ttcggttttg ctgtatcgct ggatgaacat 900
ggcaagaaca acattaaact ctctgggaca cttggttatg ttgccccgga atacctcctt 960
gacggaaaac tgacggataa gagtgatgtt tatgcatttg gggtagttct gcttgaactc 1020
ttgttgggta gacgaccagt tgaaaaatta actccagctc aatgccaatc tcttgtaact 1080
tgggcaatgc cacaacttac cgatagatcc aagcttccaa acattgtgga tgccgttata 1140
aaagatacaa tggatctcaa acacttatac caggtagcag ccatggctgt gttgtgcgtg 1200
cagccagaac caagttaccg gccgttgata accgatgttc ttcactcact tgttccactg 1260
gttccggtag agctaggagg gactctccgg ttaacaagat gattcacag 1309
<210> 122
<211> 25
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 122
tcggacaagg cggtttcgga tgcgt 25
<210> 123
<211> 32
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 123
tagtcctcta gctgtatcaa gagcaatctt ca 32
<210> 124
<211> 32
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 124
tatcattgtt gggctctgca agtgaaatca ac 32
<210> 125
<211> 32
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 125
tggagaaagg atccttagat gatcagttac at 32
<210> 126
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 126
tccatgtaac tgatcatcta aggatccttt c 31
<210> 127
<211> 37
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 127
ataaacgacg aaactcgagt tgatttcact tgcagag 37
<210> 128
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 128
aaaatgaaga aactggttca tcttcagt 28
<210> 129
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 129
tagacttcta ttctcacatt cttacac 27
<210> 130
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 130
tccaatgatc cattatgcat cagctca 27
<210> 131
<211> 29
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 131
tcgttctcaa attctctctc agcatgttg 29
<210> 132
<211> 29
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 132
tccggatatg ccaggtcagc gctgatcca 29
<210> 133
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 133
tccagggatc ccttctccat gagctcat 28
<210> 134
<211> 41
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 134
aaagagctct ctgtgtcagg aatccaaatg ggaagtggtg a 41
<210> 135
<211> 47
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 135
atagctagct gttaaaagcg atttataatt tacaccgttt tggtgta 47
<210> 136
<211> 43
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 136
atagctagca gaaaagtttt tgatgaaatt caatctaaag act 43
<210> 137
<211> 29
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 137
tctgggttta tcatcatacc aagtatcca 29
<210> 138
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 138
attcagttcc atcaagattg ttggcatgga c 31
<210> 139
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 139
tggagggagg tggccctgag tgcgagaagg a 31
<210> 140
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 140
gctggatctg cttggcagga ttcggca 27
<210> 141
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 141
atatctagat gctaggttat agatccatgc a 31
<210> 142
<211> 33
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 142
ataggatcca ccagaactat atatacgaag gca 33
<210> 143
<211> 40
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 143
aggacgactt ggctcgatta aaatcacagg tcgtgatatg 40
<210> 144
<211> 35
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 144
taatcgagcc aagtcgtcct acatatatat tccta 35
<210> 145
<211> 35
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 145
taatcgagcc aagtcgtcct ctcttttgta ttcca 35
<210> 146
<211> 42
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 146
aggacgactt ggctcgatta aaatcaaaga gaatcaatga tc 42
<210> 147
<211> 21
<212> DNA
<213> 人工序列
<220>
<223> Synthesized gene fragment
<400> 147
gacgacttgg ctcgattaaa a 21
<210> 148
<211> 399
<212> DNA
<213> 拟南芥
<400> 148
tgctaggtta tagatccatg caaatatgga gtagatgtac aaacacacgc tcggacgcat 60
attacacatg ttcatacact taatactcgc tgttttgaat tgatgtttta ggaatatata 120
tgtagagaga gcttccttga gtccattcac aggtcgtgat atgattcaat tagcttccga 180
ctcattcatc caaataccga gtcgccaaaa ttcaaactag actcgttaaa tgaatgaatg 240
atgcggtaga caaattggat cattgattct ctttgattgg actgaaggga gctccctctc 300
tcttttgtat tccaattttc ttgattaatc tttcctgcac aaaaacatgc ttgatccact 360
aagtgacata tatgctgcct tcgtatatat agttctggt 399
<210> 149
<211> 399
<212> DNA
<213> 人工序列
<220>
<223> Artificial microRNA construct
<400> 149
tgctaggtta tagatccatg caaatatgga gtagatgtac aaacacacgc tcggacgcat 60
attacacatg ttcatacact taatactcgc tgttttgaat tgatgtttta ggaatatata 120
tgtaggacga cttggctcga ttaaaatcac aggtcgtgat atgattcaat tagcttccga 180
ctcattcatc caaataccga gtcgccaaaa ttcaaactag actcgttaaa tgaatgaatg 240
atgcggtaga caaattggat cattgattct ctttgatttt aatcgagcca agtcgtcctc 300
tcttttgtat tccaattttc ttgattaatc tttcctgcac aaaaacatgc ttgatccact 360
aagtgacata tatgctgcct tcgtatatat agttctggt 399
<210> 150
<211> 1475
<212> DNA
<213> 拟南芥
<400> 150
cttagccaat ggatgaggat gacacgataa tgataatcaa agatcaacat ggcacgctca 60
agaccgcctt tagaagtcct ctctaaattc tttcttccga tctcctaaat atgttttgtt 120
ttggtcaaat aaattgatag gtaatactta gtgattatac tatttggttt ttgttttatc 180
attgactatt tcacttttat aaatcaaata cttatcaaaa ttgttctttc cgtatgtatt 240
catattttct aatattgtaa agatttgttt cacctaacat ctgtacccat ctttgatcat 300
tgacaaaata tatattagaa tggccttaga acgtgttagg catcttccta ctattatcat 360
attacctaat ccccaatttt attacatttt ttaatttcta aaagagcttg aatataatgt 420
catttcgaat atctctgttc atcttttttt ttttctgtgc gacttctgac ccaaagcctt 480
cgacgatttt ttccaatctg aaaacttttg aataaggaac ttagtcaatg gtcaacacct 540
tgctaattaa acaaagttcc attgatacaa taatgagatt tttgtacatt aacgctttca 600
tatagttttt gcgattcaac agataatctt aaaattaagg agtcctattg ataaagtctt 660
gttcaaacgt acaaactcaa tccacacaaa accttcataa aatacgatat aggaaataaa 720
gattgttttt gcgtgagaaa atactatatg aactcaaaag attttaaaac aatttgtatt 780
aatacataaa caattgttgt gatacacccg tgtaaaattt taagattgtt tttttctgaa 840
attcttcaag gaaacttata gcttaaaatc tacacttcaa atactctgtt ttaaaggcat 900
taaaaataac tgcgtttcag aaaaatattg aaattttagc tgatcttttg ctacaaattt 960
aaggaatctt ggcacctgca gaatctataa catgttcatt aagtaatgca atagttatac 1020
aattatacat tatttgcatc atacttatat tatagtgata ttaacaaacc catgttctca 1080
gcacactttt acgtagaaaa acataaaaac ccaaatagga agaagccact cataaggata 1140
atgggtttat ataattcaca gcaaagaaag ccatcgaact attcgattaa ttatccattc 1200
tttttttttt tagtttgaat gtataagaac aaagagttgt tacgcatcat gacaatgtct 1260
tagaaaacaa aagaaatgaa taaaaaagta aaacgaaaaa taaaaagtga ggatgaagtt 1320
gttgaatgag ttggcgaggc ggcgactttt tcatacattc catttactta attcctaaag 1380
tccttctcac atctctttgt tatataatga caccataacc atttcttctc ttcacaatct 1440
ttacaagaat atctctcttc tacagtaaac aaaaa 1475
<210> 151
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 151
acgtaagctt cttagccaat ggatgaggat g 31
<210> 152
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 152
acgttctaga tttttgttta ctgtagaaga g 31
<210> 153
<211> 338
<212> DNA
<213> 油菜
<400> 153
tgctgcttca aatccttcta tagctcctgt ttataccacc atgactactt tctctccagg 60
aattcaaatg ggaagtggtg aagaacacag attagatgca cataagaaac tcctgattgg 120
tcttataatc agttcctctt ctcttggtat cgtaatcttg atttgctttg gcttctggat 180
gtactgtcgc aagaaagctc ccaaacccat caagattccg gatgctgaga gtgggacttc 240
atcattttca atgtttgtga ggcggctaag ctcaatcaaa actcagagaa catctagcaa 300
tcagggttat gtgcagcgtt tcgattccaa gacgctag 338
<210> 154
<211> 38
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 154
tatggatcct gctgcttcaa atccttctat agctcctg 38
<210> 155
<211> 37
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 155
tattctagac tagcgtcttg gaatcgaaac gctgcac 37
<210> 156
<211> 38
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 156
tatgagctct gctgcttcaa atccttctat agctcctg 38
<210> 157
<211> 37
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 157
tatgagctcc tagcgtcttg gaatcgaaac gctgcac 37
<210> 158
<211> 24
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 158
gcagatcgct cctcccgtcg tgat 24
<210> 159
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 159
cgcctaggag cgacgggtac tcgatcat 28
<210> 160
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 160
cctagctaag cgacgggtac tcgatcat 28
<210> 161
<211> 272
<212> DNA
<213> 二穗短柄草
<400> 161
gctcctcccg tcgtgatcac agtggtgagg caccaccatt accaccggga gctggtcatc 60
tccgctgtcc tcgcctgcgt cgccaccgcc atgatcctcc tctccacact ctacgcctgg 120
acgatgtggc ggcggtctcg ccggaccccc cacggcggca agggccgcgg ccggagatca 180
gggatcacac tggtgccaat cctgagcaag ttcaattcag tgaagatgag caggaagggg 240
ggccttgtga cgatgatcga gtacccgtcg ct 272
<210> 162
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 162
cgggatcccg gcataacaaa ctcgtgcatc c 31
<210> 163
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 163
ccatcgatgg cgccaaacac aatagctcaa 30
<210> 164
<211> 1174
<212> DNA
<213> 二穗短柄草
<400> 164
gtaagtaatt tcaagtttaa gtttcataag cataacaaac tcgtgcatcc aatttgaacc 60
attttactgt cctggcatcc tctaaatatt tccttgatta tcagcttatc ttcatcccat 120
tgaatcagaa aattaccaac ccttgtttta gctttaatca ttgttatttg ttgtctgagg 180
ggctacactg tttctttata ttggtgaagg agttaccagg caaaaattcc cacctcctga 240
tattagcaga gacccccttt tttgtgcctg tatgcatact aacaaataat acagatggaa 300
atatgtatat ttgttatatc atggattgat gctttatgtt tagcaagtcc atgcaatggt 360
agtcaaaaga tgtaaacttt tgaatgatat attggggctt tagattagcc atttttaccc 420
tcacttgaaa atgacaattt tgcccttccg atctactttc tcttgtcacc tcaggcaggc 480
tcttgaaagt tcttatccct gaattccgtg gaagtttatt attctaatgt tatagtttac 540
ttaaagtgtc gcataatcta ctagagccta atggaagtac tgatggactt tgttttgcta 600
caatcactgc ttgcaagaat gactactttg gggcatttct aatatattat tgatatttct 660
atgatgtatt gttgtccatg tacttcagtc cttacagcga ctagtcctat ttctgcattg 720
ataaattgtt cactgtcaga ccatcttgag tggcaagaat gagtataaca tgtcttgttt 780
ttctgtgatt tcaaggtaag cgcacatgcg cacagtgtac accgtcacca catgtgagta 840
caccccctag tacacatgta aaaaaagcac agtccagtta ttaaatggac cattggcatt 900
gattgtcgtg tttataggag taaagataca tgtaaacact aattcattgg gagatataaa 960
tttatactac cattgaatgt gacataggct ctaaggtttt tagttcagca tttcgaaaga 1020
gctttgtttg gttggcttgg gatggaatca ggtgacaaca tttttgggtt gcagcaaatt 1080
taatattgat tgaggaggca tacaacgaaa tcattgagct attgtgtttg gcgttacatc 1140
tatggaattt cttctaatct gattattgtt tgta 1174
<210> 165
<211> 22
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 165
gatccgctcc tcccgtcgtg at 22
<210> 166
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 166
aacgcgatcg cttgcatgcc tgcagtagac 30
<210> 167
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 167
gacttaatta agaattcgag ctcgggta 28
<210> 168
<211> 251
<212> DNA
<213> 细枝稷
<400> 168
tcgtagtgca ccaccatttc caccgcgagc tggtcatcgc cgccgtcctc gcctgcatcg 60
ccaccgtcac gatcttcctt tccacgctct acgcttggac actatggcgg cgatctcgcc 120
ggagcaccgg cggcaaggtc accaggagct cagacgcagc gaaggggatc aagctggtgc 180
cgatcttgag caggttcaac tcggtgaaga tgagcaggaa gaggctggtt gggatgttcg 240
agtacccgtc g 251
<210> 169
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 169
gcagatctcg tagtgcacca ccatttc 27
<210> 170
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 170
cgcctaggcg acgggtactc gaacatc 27
<210> 171
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 171
cctagctacg acgggtactc gaacatc 27
<210> 172
<211> 25
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 172
gatcctcgta gtgcaccacc atttc 25
<210> 173
<211> 21
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 173
ctcgtagtgc accaccattt c 21
<210> 174
<211> 261
<212> DNA
<213> 甜高粱
<400> 174
aatgggaccg cctccgttgc tccggcggtg ccggcgccgc ctcccgtcgt gatcatcgtg 60
gagcggcgcc atcatttcca ccgcgagcta gtcatcgcct ccgttctcgc ctccatcgcc 120
atcgtcgcga ttatcctctc cacgctctat gcgtggatcc tgtggcggcg gtctcgccgg 180
ctgcccagcg gcaagggcgc caggagcgca gacaccgcga ggggaatcat gctggtgccg 240
atcctgagca agttccactc a 261
<210> 175
<211> 26
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 175
gcagatcaat gggaccgcct ccgttg 26
<210> 176
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 176
cgcctaggtg agtggaactt gctcagga 28
<210> 177
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 177
cctagctatg agtggaactt gctcagga 28
<210> 178
<211> 273
<212> DNA
<213> 甜高粱
<400> 178
gtaagtattc ttgcaacaca ttactatttt caataaccac aagtttaaaa gcttgagtcc 60
atttcgcaaa ccagttgttc ataaccaaat tcttaggtaa ttaggtccaa ttgagaaaat 120
ctgatcattg aacactagca ggaaataact cagacatagt ttctgcatac tataatgatg 180
cttaatatat ttgttctctt ttgagattgt attgcataga catttctgtg taaaataatg 240
ttttacatca tgtatatata tcacttttta tag 273
<210> 179
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 179
cgggatcctt cttgcaacac attactattt 30
<210> 180
<211> 34
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 180
ccatcgatga aatgtctatg caatacaatc tcaa 34
<210> 181
<211> 24
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 181
gatccaatgg gaccgcctcc gttg 24
<210> 182
<211> 21
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 182
caatgggacc gcctccgttg a 21
<210> 183
<211> 1000
<212> DNA
<213> 甜高粱
<400> 183
ggccccggcc gcgcgcgtct ccgtgtcctc cgcgactgtg cacgtttcgt cgggagcggc 60
gtgcccacgc ccaccccccg tccaccagcc agcaaccgac ggcactggtg acacgcggct 120
ggtccgctcg gtccgccccg cggctccaga tcacggcaag cgcgcccgcc gcccgctgct 180
gcgctgcgct gcacgtcccg ccctgacgcc acgccacgcc aagcgcgaca cgacacgaca 240
cgacacgacc cgacccccgc caacgaaacg ccgaaacgcg gcaacgcgtg acgggcgcgc 300
atggtcgatg ctctacccgc gcgtccgccc cacgccaatc tcccggcggg tccctcgtgg 360
gacggggaac gcgatgcggc tgcaggctgc gaccgcgacc gcgaccgcga ccgcgcccac 420
gtgaaggcag gcaggcagcc ccggagcggg cgcggcggtg ggccaacgac gcgttgccgt 480
cgcgaatctt cttctggcca cggccaaggg ccaatcgccc gctccgctcc gctccgcact 540
ccgcctccgc tagggaatat ggaacccgat cccacggccc tctgggtctg gtcgacgggt 600
cctctcgccg tggcagctgc ttcccggacc ggaggatcgc tgagcgcgga cgccactgcc 660
attgccgtcc gactatagtt gttaattacc ataaaataat ttgttaacga taaaacccgt 720
gtcaggcacc gtcgtctgga cgctgctatg ggataaccat tcgcgtacgt cggttgtatg 780
ggtgggatcc tctgcggcac gccattctgg tgctgctagt ggaatagaca aaaaaagggc 840
cgacggtgtt tgctcgtggc aggccacaca gagtgacaac cagagtggtt gccgcaaaaa 900
caaccaatca cacaaaaagt gttgtaccgg tggaggacag ccattaatca gcaggccggc 960
ttcgcggcca aaagaaacgg agaagaggaa aaaggggggc 1000
<210> 184
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 184
tcccaagctt gcgcgtctcc gtgtcctc 28
<210> 185
<211> 30
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 185
agtaaagctt cccccttttt cctcttctcc 30
<210> 186
<211> 1000
<212> DNA
<213> 甜高粱
<400> 186
taatggtcga gtgaggcccg tatagatgta gttaaatagc taaaattttt ggagaaataa 60
gcattttttt ggaagaatat atttaaacat gggcttgtaa aacttggctg taaagatttg 120
gaatttagga tcttggagcc ccaaaactgt ataaacttgc ttagggaccc gtgtcttgtg 180
tgttgcagac caaaaaattt agaaagcatc taaacaccta tttgaatgta aagtttacag 240
ccaaaagttt taggatgtaa agatttggga tctaaaagta gtcattagga aataacacgt 300
tagagagaga gagtagatct tcttattggt ttctcatgca ctaatcgaac caatcactgg 360
accacttgaa ccaaacttta tcacattgaa ctttgtcagt tcagttcgaa cgcaggactg 420
gagctgccct taaggccaat tgctcaagat tcattcaaca attgaaacat ctcccatgat 480
taaatcagta taaggttgct atggtcttgc ttgacaaagt tttttttttg agggaatttc 540
aactaaattt ttgagtgaaa ctatcaaata ctgattttaa aaatttttta taaaaggaag 600
cgcagagata aaaggccatc tatgctacaa aagtacccaa aaatgtaatc ctaaagtatg 660
aattgcattt tttttgtttg gacgaaagga aaggagtatt accacaagaa tgatatcatc 720
ttcatattta gatctttttt gggtaaagct tgagattctc taaatataga gaaatcagaa 780
gaaaaaaaaa ccgtgttttg gtggttttga tttctagcct ccacaataac tttgacggcg 840
tcgacaagtc taacggacac caagcagcga accaccagcg ccgagccaag cgaagcagac 900
ggccgagacg ttgacacctt cggcgcggca tctctcgaga gttccgctcc ggcgctccac 960
ctccaccgct ggcggtttct tattccgttc cgttccgcct 1000
<210> 187
<211> 26
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 187
aactgcaggg tcgagtgagg cccgta 26
<210> 188
<211> 28
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 188
ttctgcaggg aacggaacgg aataagaa 28
<210> 189
<211> 239
<212> DNA
<213> 甜高粱
<400> 189
gccgtgggtc gtttaagctg ccgctgtacc tgtgtcgtct ggtgccttct ggtgtacctg 60
ggaggttgtc gtctatcaag tatctgtggt tggtgtcatg agtcagtgag tcccaatact 120
gttcgtgtcc tgtgtgcatt atacccaaaa ctgttatggg caaatcatga ataagcttga 180
tgttcgaact taaaagtctc tgctcaatat ggtattatgg ttgtttttgt tcgtctcct 239
<210> 190
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 190
taggtaccgc cgtgggtcgt ttaagct 27
<210> 191
<211> 27
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 191
aaggtaccag gagacgaaca aaaacaa 27
<210> 192
<211> 34
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 192
aacgcgatcg taatggtcga gtgaggcccg tata 34
<210> 193
<211> 1302
<212> DNA
<213> 油菜
<400> 193
atgaagaaac tggttcatct tcagtttctg tttcttgtca agatctttgc tactcaattc 60
ctcactcctt cttcatcatc ttttgctgct tcaaatcctt ctatagctcc tgtttatacc 120
accatgacta ctttctctcc aggaattcaa atgggaagtg gtgaagaaca cagattagat 180
gcacataaga aactcctgat tggtcttata atcagttcct cttctcttgg tatcgtaatc 240
ttgatttgct ttggcttctg gatgtactgt cgcaagaaag ctcccaaacc catcaagatt 300
ccggatgctg agagtgggac ttcatcattt tcaatgtttg tgaggcggct aagctcaatc 360
aaaactcaga gaacatctag caatcagggt tatgtgcagc gtttcgattc caagacgcta 420
gagaaagcga caggcggttt caaagacagt aatgtaatcg gacagggcgg tttcggatgc 480
gtttacaagg cttctttgga cagcaacact aaagcagcgg ttaaaaagat cgaaaacgtt 540
agccaagaag caaaacgaga atttcagaat gaagttgagc tgttgagcaa gatccagcac 600
tccaatatta tatcattgtt gggctctgca agtgaaatca actcgagttt cgtcgtttat 660
gagttgatgg agaaaggatc cttagatgat cagttacatg gaccttcgtg tggatccgct 720
ctaacatggc atatgcgtat gaagattgct ctagatacag ctagaggatt agagtatctc 780
catgaacatt gtcgtccacc agttatccac agggacctga aatcgtctaa tatacttctt 840
gattcttcct tcaatgccaa gatttcagat tttggtctgg ctgtatcggt tggagtgcat 900
gggagtaaca acattaaact ctctgggaca cttggttatg ttgccccgga atatctccta 960
gacggaaagt tgacggataa gagtgatgtc tatgcatttg gggtggttct tcttgaactt 1020
ttgttgggta gaaggccggt tgagaaattg agtccatctc agtgtcaatc tcttgtgact 1080
tgggcaatgc cacaacttac cgatagatcg aaactcccaa acatcgtgga tccggttata 1140
aaagatacaa tggatcttaa gcacttatac caggtagcag ccatggctgt gttgtgcgtt 1200
cagccagaac cgagttaccg gccgctgata accgatgttc ttcactcact tgttccattg 1260
gttccggtcg aactaggagg gactctccgg ttaacccgat ga 1302
<210> 194
<211> 433
<212> PRT
<213> 油菜
<400> 194
Met Lys Lys Leu Val His Leu Gln Phe Leu Phe Leu Val Lys Ile Phe
1 5 10 15
Ala Thr Gln Phe Leu Thr Pro Ser Ser Ser Ser Phe Ala Ala Ser Asn
20 25 30
Pro Ser Ile Ala Pro Val Tyr Thr Thr Met Thr Thr Phe Ser Pro Gly
35 40 45
Ile Gln Met Gly Ser Gly Glu Glu His Arg Leu Asp Ala His Lys Lys
50 55 60
Leu Leu Ile Gly Leu Ile Ile Ser Ser Ser Ser Leu Gly Ile Val Ile
65 70 75 80
Leu Ile Cys Phe Gly Phe Trp Met Tyr Cys Arg Lys Lys Ala Pro Lys
85 90 95
Pro Ile Lys Ile Pro Asp Ala Glu Ser Gly Thr Ser Ser Phe Ser Met
100 105 110
Phe Val Arg Arg Leu Ser Ser Ile Lys Thr Gln Arg Thr Ser Ser Asn
115 120 125
Gln Gly Tyr Val Gln Arg Phe Asp Ser Lys Thr Leu Glu Lys Ala Thr
130 135 140
Gly Gly Phe Lys Asp Ser Asn Val Ile Gly Gln Gly Gly Phe Gly Cys
145 150 155 160
Val Tyr Lys Ala Ser Leu Asp Ser Asn Thr Lys Ala Ala Val Lys Lys
165 170 175
Ile Glu Asn Val Ser Gln Glu Ala Lys Arg Glu Phe Gln Asn Glu Val
180 185 190
Glu Leu Leu Ser Lys Ile Gln His Ser Asn Ile Ile Ser Leu Leu Gly
195 200 205
Ser Ala Ser Glu Ile Asn Ser Ser Phe Val Val Tyr Glu Leu Met Glu
210 215 220
Lys Gly Ser Leu Asp Asp Gln Leu His Gly Pro Ser Cys Gly Ser Ala
225 230 235 240
Leu Thr Trp His Met Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly
245 250 255
Leu Glu Tyr Leu His Glu His Cys Arg Pro Pro Val Ile His Arg Asp
260 265 270
Leu Lys Ser Ser Asn Ile Leu Leu Asp Ser Ser Phe Asn Ala Lys Ile
275 280 285
Ser Asp Phe Gly Leu Ala Val Ser Val Gly Val His Gly Ser Asn Asn
290 295 300
Ile Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu
305 310 315 320
Asp Gly Lys Leu Thr Asp Lys Ser Asp Val Tyr Ala Phe Gly Val Val
325 330 335
Leu Leu Glu Leu Leu Leu Gly Arg Arg Pro Val Glu Lys Leu Ser Pro
340 345 350
Ser Gln Cys Gln Ser Leu Val Thr Trp Ala Met Pro Gln Leu Thr Asp
355 360 365
Arg Ser Lys Leu Pro Asn Ile Val Asp Pro Val Ile Lys Asp Thr Met
370 375 380
Asp Leu Lys His Leu Tyr Gln Val Ala Ala Met Ala Val Leu Cys Val
385 390 395 400
Gln Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser
405 410 415
Leu Val Pro Leu Val Pro Val Glu Leu Gly Gly Thr Leu Arg Leu Thr
420 425 430
Arg
<210> 195
<211> 31
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 195
aatccagctc attctggaat tccttctcgc a 31
<210> 196
<211> 32
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 196
tgaacttgct caggattggc accagtgtga tc 32
<210> 197
<211> 461
<212> PRT
<213> 二穗短柄草
<400> 197
Met Glu Ile Pro Ala Ala Pro Pro Pro Pro Leu Pro Val Leu Cys Ser
1 5 10 15
Tyr Val Val Phe Leu Leu Leu Leu Ser Ser Cys Ser Leu Ala Arg Gly
20 25 30
Arg Ile Ala Val Ser Ser Pro Gly Pro Ser Pro Val Ala Ala Ala Val
35 40 45
Thr Ala Asn Glu Thr Ala Ser Ser Ser Ser Ser Pro Val Phe Pro Ala
50 55 60
Ala Pro Pro Val Val Ile Thr Val Val Arg His His His Tyr His Arg
65 70 75 80
Glu Leu Val Ile Ser Ala Val Leu Ala Cys Val Ala Thr Ala Met Ile
85 90 95
Leu Leu Ser Thr Leu Tyr Ala Trp Thr Met Trp Arg Arg Ser Arg Arg
100 105 110
Thr Pro His Gly Gly Lys Gly Arg Gly Arg Arg Ser Gly Ile Thr Leu
115 120 125
Val Pro Ile Leu Ser Lys Phe Asn Ser Val Lys Met Ser Arg Lys Gly
130 135 140
Gly Leu Val Thr Met Ile Glu Tyr Pro Ser Leu Glu Ala Ala Thr Gly
145 150 155 160
Lys Phe Gly Glu Ser Asn Val Leu Gly Val Gly Gly Phe Gly Cys Val
165 170 175
Tyr Lys Ala Ala Phe Asp Gly Gly Ala Thr Ala Ala Val Lys Arg Leu
180 185 190
Glu Gly Gly Gly Pro Asp Cys Glu Lys Glu Phe Glu Asn Glu Leu Asp
195 200 205
Leu Leu Gly Arg Ile Arg His Pro Asn Ile Val Ser Leu Leu Gly Phe
210 215 220
Cys Val His Gly Gly Asn His Tyr Ile Val Tyr Glu Leu Met Glu Lys
225 230 235 240
Gly Ser Leu Glu Thr Gln Leu His Gly Ser Ser His Gly Ser Ala Leu
245 250 255
Ser Trp His Val Arg Met Lys Ile Ala Leu Asp Thr Ala Arg Gly Leu
260 265 270
Glu Tyr Leu His Glu His Cys Asn Pro Pro Val Ile His Arg Asp Leu
275 280 285
Lys Pro Ser Asn Ile Leu Leu Asp Ser Asp Phe Asn Ala Lys Ile Ala
290 295 300
Asp Phe Gly Leu Ala Val Thr Gly Gly Asn Leu Asn Lys Gly Asn Leu
305 310 315 320
Lys Leu Ser Gly Thr Leu Gly Tyr Val Ala Pro Glu Tyr Leu Leu Asp
325 330 335
Gly Lys Leu Thr Glu Lys Ser Asp Val Tyr Ala Phe Gly Val Val Leu
340 345 350
Leu Glu Leu Leu Met Gly Arg Lys Pro Val Glu Lys Met Ser Pro Ser
355 360 365
Gln Cys Gln Ser Ile Val Ser Trp Ala Met Pro Gln Leu Thr Asp Arg
370 375 380
Ser Lys Leu Pro Asn Ile Ile Asp Leu Val Ile Lys Asp Thr Met Asp
385 390 395 400
Pro Lys His Leu Tyr Gln Val Ala Ala Val Ala Val Leu Cys Val Gln
405 410 415
Pro Glu Pro Ser Tyr Arg Pro Leu Ile Thr Asp Val Leu His Ser Leu
420 425 430
Val Pro Leu Val Pro Ala Glu Leu Gly Gly Thr Leu Arg Val Ala Glu
435 440 445
Pro Pro Ser Pro Ser Pro Asp Gln Arg His Tyr Pro Cys
450 455 460
<210> 198
<211> 53
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 198
tataccggta aaatgagaga gcttcttctt cttcttcttc ttcattttca gtc 53
<210> 199
<211> 39
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 199
atataccggt cttgttaacc ggagagtccc tcctagctc 39
<210> 200
<211> 18
<212> DNA
<213> 人工序列
<220>
<223> 合成引物
<400> 200
cgctcctccc gtcgtgat 18
Claims (9)
1.制备转基因植物的方法,其包括使用载体来转化植物、植物组织培养物、或植物细胞,所述载体含有抑制PK220基因的表达或活性的核酸构建物,从而获得PK220表达或活性降低的植物、组织培养物或植物细胞,并生长所述植物或从所述植物组织培养物或植物细胞中再生植物,其中制备水分利用效率提高的植物。
2.根据权利要求1的方法,其中所述核酸构建体包含编码PK220多肽的核酸序列的反义序列。
3.根据权利要求1的方法,其中所述核酸构建体包含组成型启动子、诱导型启动子或组织特异性启动子。
4.根据权利要求3的方法,其中所述组织特异性启动子是根启动子。
5.根据权利要求1的方法,其中所述核酸构建体包含长度至少为21个核苷酸的PK220序列或其互补序列。
6.由权利要求1-5中任一项的方法制备的植物。
7.转基因种子,其由权利要求6所述的转基因植物产生,其中,所述种子产生具有相对于野生型植物增加的水分利用效率的植物。
8.植物,所述植物在PK220基因中具有非天然存在的突变,其中所述植物具有降低的PK220基因表达或活性,并且所述植物相对于野生型对照具有提高的水分利用效率。
9.种子,其由权利要求8所述的植物产生,其中所述种子产生具有相对于野生型植物增加的水分利用效率的植物。
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