JP5349966B2 - 新規アクチビン受容体およびその使用 - Google Patents
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- JP5349966B2 JP5349966B2 JP2008539077A JP2008539077A JP5349966B2 JP 5349966 B2 JP5349966 B2 JP 5349966B2 JP 2008539077 A JP2008539077 A JP 2008539077A JP 2008539077 A JP2008539077 A JP 2008539077A JP 5349966 B2 JP5349966 B2 JP 5349966B2
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Description
本出願は、その全開示が信頼され、そして本明細書に援用される、米国仮出願第60/732,270号、2005年11月1日出願の優先権を請求する。
本発明の技術分野は、トランスフォーミング増殖因子−β(TGF−β)ファミリーメンバーおよびTGF−β受容体、ならびに多様な障害の治療のため、TGF−βファミリーメンバーの活性を調節する方法に関する。
タンパク質のトランスフォーミング増殖因子β(TGF−β)ファミリーには、トランスフォーミング増殖因子−β(TGF−β)、アクチビン、骨形成性タンパク質(BMP)、神経増殖因子(NGF)、脳由来神経栄養因子(BDNF)、および増殖/分化因子(GDF)が含まれる。これらのファミリーメンバーは、細胞増殖、分化、および他の機能を含む、広範囲の生物学的プロセスの制御に関与する。アクチビンは、元来、濾胞刺激ホルモン合成の制御に関与する生殖腺ペプチドとして発見され、そして現在、FSH、GH、およびACTHなどの下垂体前葉ホルモンの分泌および発現、神経生存、視床下部オキシトシン分泌、赤血球生成、胎盤および性腺ステロイド合成、初期胚発生、ならびにいくつかの種類の腫瘍の増殖の調節を含む、いくつかの生物学的活性の制御に関与すると考えられている。アクチビンA、BおよびABは、それぞれβAおよびβBの2つのポリペプチド鎖のホモ二量体およびヘテロ二量体である(Valeら Nature 321, 776−779 (1986), Lingら, Nature 321, 779−782 (1986))。これらの2つのβ鎖はまた、関連するα鎖と二量体化して、それぞれ、インヒビンAおよびBを生じさせることも可能である(Masonら, Nature 318, 659−663 (1986))。インヒビンが、多くの組織、特に生殖機能と関連するものにおいて、正常な機能を維持するのに必要であることはよく立証されている。これらの組織において、インヒビンは、すべてではないが、多くのアクチビン活性に対抗する。
本発明は、ヒト・アクチビン受容体IIB5(ActRIIB5と称する)ポリペプチドを含むタンパク質を提供する。1つの態様において、タンパク質は、配列番号2に示すアミノ酸配列を有するポリペプチドを含む。別の態様において、タンパク質は、配列番号2に少なくとも約80%以上の同一性を持つアミノ酸配列を有するポリペプチドであって、ミオスタチン、アクチビンA、またはGDF−11に結合可能である、前記ポリペプチドを含む。別の態様において、タンパク質は、配列番号2に少なくとも約80%以上の同一性を持つアミノ酸配列を有するポリペプチドであって、ポリペプチドのC末端が配列番号3に示すアミノ酸配列からなり、そしてポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、前記ポリペプチドを含む。別の態様において、タンパク質は、配列番号2に少なくとも約80%以上の同一性を持つアミノ酸配列を有するポリペプチドであって、ポリペプチドのC末端が配列番号3に少なくとも約80%以上の同一性を持つアミノ酸配列を有し、そしてポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、前記ポリペプチドを含む。1つの態様において、ポリペプチドは、ActRIIB5シグナル配列を欠く。別の態様において、タンパク質は、配列番号1に示す配列を有するポリヌクレオチドにコードされるポリペプチドを含む。
本発明は、アクチビン受容体IIB5(ActRIIB5)と称される新規ヒト・アクチビン受容体を提供する。この受容体は、3つのTGF−βタンパク質、ミオスタチン(GDF−8)、アクチビンA、およびGDF−11に結合する能力、ならびにこれらのタンパク質の活性を阻害する能力によって特徴付けられる。
本明細書において、用語「アクチビンIIB型受容体」(ActRIIB)は、タンパク質に関して寄託番号NP_001097を有するヒト前駆体アクチビン受容体、あるいはこの受容体の任意の変異体または相同体を指す。ヒトActRIIB前駆体ポリヌクレオチドおよびアミノ酸配列を、それぞれ、配列番号4および5に示す。64位のアルギニンがアラニンに置換されているActRIIBの変異を配列番号6に示す。配列番号5はR型と称され、そして配列番号6はA型と称される。ActRIIBの細胞外ドメイン(ActRIIB−ECD)は、配列番号5および6のアミノ酸1〜124に示される。この受容体のさらなるネズミ・アイソフォームは、muActRIIB1、muActRIIB2、muActRIIB3およびmuActRIIB4と同定されている。
本発明には、本発明のActRIIB5受容体ポリペプチドに特異的に結合する抗体がさらに含まれる。本明細書において、用語「特異的に結合する」は、ActRIIB5ポリペプチドに対して106M−1以上の結合親和性(Ka)を有する抗体を指す。本明細書において、用語「抗体」は、ポリクローナル抗体(例えばAntibodies: A Laboratory Manual, HarlowおよびLane(監修), Cold Spring Harbor Press, (1988)を参照されたい)、およびモノクローナル抗体(例えば、米国特許第RE 32,011号、第4,902,614号、第4,543,439号、および第4,411,993号、ならびにMonoclonal Antibodies: A New Dimension in Biological Analysis, Plenum Press, Kennett, McKearnおよびBechtol(監修)(1980)を参照されたい)を含む、損なわれていない(intact)抗体を指す。本明細書において、用語「抗体」はまた、F(ab)、F(ab’)、F(ab’)2、Fv、Fc、および一本鎖抗体などの抗体断片も指し、これらは、組換えDNA技術によって、あるいは損なわれていない抗体の酵素的または化学的切断によって、産生される。用語「抗体」はまた、2つの異なる重鎖/軽鎖対および2つの異なる結合部位を有する人工的ハイブリッド抗体である、二重特異性抗体または二重官能性抗体も指す。二重特異性抗体は、ハイブリドーマの融合またはFab’断片の連結を含む、多様な方法によって産生可能である(Songsivilaiら, Clin. Exp. Immunol. 79:315−321 (1990), Kostelnyら, J. Immunol. 148:1547−1553 (1992)を参照されたい)。本明細書において、用語「抗体」はまた、キメラ抗体、すなわち1以上の非ヒト可変抗体免疫グロブリン・ドメインまたはその断片にカップリングしたヒト定常抗体免疫グロブリン・ドメインを有する抗体も指す(例えば、米国特許第5,595,898号および米国特許第5,693,493号を参照されたい)。抗体はまた、「ヒト化」抗体(例えば米国特許第4,816,567号およびWO 94/10322を参照されたい)、ミニボディ(WO 94/09817)、マキシボディ、およびトランスジェニック動物によって産生された抗体も指し、ここで、ヒト抗体産生遺伝子の一部を含有するが、内因性抗体の産生が欠損しているトランスジェニック動物は、ヒト抗体を産生可能である(例えば、Mendezら, Nature Genetics 15:146−156 (1997)、および米国特許第6,300,129号を参照されたい)。用語「抗体」にはまた、多量体抗体、またはヘテロ二量体抗体などのタンパク質のより高次の複合体、および抗イディオタイプ抗体も含まれる。「抗体」にはまた、抗イディオタイプ抗体も含まれる。ActRIIB5に対する抗体を用いて、例えば、in vitroおよびin vivoでActRIIB5を同定し、そして定量化することも可能である。
本発明のActRIIB5ポリペプチドおよびタンパク質を含有する薬学的組成物もまた提供する。こうした組成物は、薬学的に許容されうる材料、および生理学的に許容されうる配合材料と混合された、療法的または予防的に有効な量のポリペプチドを含む。薬学的組成物は、例えば、組成物のpH、モル浸透圧濃度、粘性、透明度、色、等張性、匂い、無菌性、安定性、分解または放出速度、吸着または浸透を修飾するか、維持するか、または保存するための配合物材料を含有してもよい。適切な配合物材料には、限定されるわけではないが、アミノ酸(グリシン、グルタミン、アスパラギン、アルギニンまたはリジンなど);抗菌剤;酸化防止剤(アスコルビン酸、亜硫酸ナトリウムまたは亜硫酸水素ナトリウムなど);緩衝剤(ホウ酸、重炭酸、Tris−HCl、クエン酸、リン酸または他の有機酸など);充填剤(マンニトールまたはグリシンなど);キレート剤(エチレンジアミン四酢酸(EDTA)など);錯化剤(カフェイン、ポリビニルピロリドン、ベータ−シクロデキストリンまたはヒドロキシプロピル−ベータ−シクロデキストリンなど);増量剤;単糖;二糖および他の炭水化物(グルコース、マンノースまたはデキストリンなど);タンパク質(血清アルブミン、ゼラチンまたは免疫グロブリンなど);着色剤、フレーバー剤および希釈剤;乳化剤;親水性ポリマー(ポリビニルピロリドンなど);低分子量ポリペプチド;塩形成対イオン(ナトリウムなど);保存剤(塩化ベンザルコニウム、安息香酸、サリチル酸、チメロサール、フェネチルアルコール、メチルパラベン、プロピルパラベン、クロルヘキシジン、ソルビン酸または過酸化水素など);溶媒(グリセリン、プロピレングリコールまたはポリエチレングリコールなど);糖アルコール(マンニトールまたはソルビトールなど);懸濁剤;界面活性剤または湿潤剤(プルロニック類、PEG、ソルビタンエステル、ポリソルベート20、ポリソルベート80などのポリソルベート、トリトン、トロメタミン、レシチン、コレステロール、チロキサパル(tyloxapal)など);安定性増進剤(スクロースまたはソルビトール);等張性増進剤(ハロゲン化アルカリ金属(好ましくは塩化ナトリウムまたは塩化カリウム、マンニトール・ソルビトールなど);送達ビヒクル;希釈剤;賦形剤および/または薬学的佐剤が含まれる(Remington’s Pharmaceutical Sciences, 第18版, A.R. Gennaro監修, Mack Publishing Company, 1990)。
本発明は、ActRIIB5タンパク質とミオスタチン、アクチビンA、またはGDF−11を接触させることによって、これらのタンパク質の量または活性をin vivoおよびin vitroで減少させるかまたは中和するための方法および組成物を提供する。以下の実施例は、ActRIIB5タンパク質が、ミオスタチン、アクチビンA、およびGDF−11に対して高い親和性を有し、そしてミオスタチン、アクチビンAおよびGDF−11の生物学的活性を減少させそして阻害することが可能であることを立証する。実施例は、ActRIIB5が、実施例3においてIC50値によって立証されるように、ActRIIB−ECDに比較してより高い活性を有し、そして動物における生物学的反応が、実施例5および6に立証されるように、ActRIIB−ECD動物と比較して、ActRIIB5動物で優れていることを立証する。
実施例1:cDNAの単離および細胞における発現
以下のプロトコルにしたがって、ヒト精巣起源のcDNAライブラリー(Clontech, Inc.)から新規ヒト・アクチビンIIB型受容体のcDNAを単離した。ヒト・アクチビンIIB受容体(配列番号4)のN末端およびC末端用のプライマーを生成し、そしてヒトcDNAライブラリー由来のテンプレートに対してこれらのプライマーを用いて、PCRを行った。GC−RICH PCR系(Roche、カタログ番号2140306)を用いてPCTを行った。N末端およびC末端PCR産物をPvuII/EcoRIで消化し、そしてpcDNA3.1−HisAベクター(Invitrogen、カリフォルニア州カールスバッド)内にサブクローニングして、全長クローンを作製した。いくつかのPCR産物を配列決定した後、ヒト精巣cDNAライブラリー由来のcDNAクローンを新規N末端スプライス変異体受容体と同定した。この受容体のポリヌクレオチド配列を、ヒト・アクチビンIIB5型受容体(ActRIIB5)と称した。この受容体のcDNAクローンは、野生型ヒト・アクチビンIIB型受容体遺伝子中の全エクソン−4に対応する152ヌクレオチド塩基を欠いた。スプライス変異体中のエクソン−4の一部切除は、膜貫通領域に渡るアミノ酸配列の欠失、ならびに早期翻訳終結につながるフレームシフトを生じた。スプライス変異体受容体のアミノ酸配列は、野生型ヒト・アクチビンIIB型受容体のエクソン1、2および3にコードされる細胞外ドメインの大部分、ならびにフレームシフトから生じる36アミノ酸のさらなるテール領域を含有する。アミノ酸配列を配列番号2に示す。C末端配列を配列番号3に示す。膜貫通領域が欠けているため、ActRIIB5は、アクチビンIIB型受容体の可溶性型をコードする。細胞中のActRBII5 cDNAのトランスフェクションは、膜結合型でなく、分泌型の受容体タンパク質の発現につながった。
ActRIIB5をコードするcDNAを、哺乳動物pDC323またはpDC324ベクター(Bianchiら, Biotech and Bioengineering, Vol 84(4):439−444 (2003))内にクローニングし、そして293T細胞株で発現させた。Fc融合体を生成するため、ActRIIB5をコードするポリヌクレオチド(配列番号1)を、pDSRaベクター(本明細書に援用されるWO/9014363に記載される)内の、ヒトIgG1 Fcをコードするポリヌクレオチドに隣接する(Gly)8リンカー配列をコードするポリヌクレオチドに隣接してクローニングした。ActRIIB−ECDをコードするポリヌクレオチド(配列番号5のアミノ酸1〜124)を、pDSRaベクター内の、ヒトIgG1 Fcをコードするポリヌクレオチドに隣接してクローニングした(リンカーなし)。これらの構築物を、安定したCHO細胞株内にトランスフェクションした。発現された可溶性受容体−Fc融合体を、以下に記載する比較in vitro試験に用いた。
HuActRIIB5/FcおよびHuActRIIB−ECD/Fcを上述のように生成した。以下に記載するように、細胞に基づく活性アッセイを用いて、ActRIIB5受容体が、アクチビンIIB受容体への3つのリガンド、ミオスタチン、アクチビンA、およびGDF−11の各々の結合を阻害する能力を試験した。
C2C12筋芽細胞(ATCC番号:CRL−1772)をpMARE−luc構築物でトランスフェクションすることによって、ミオスタチン/アクチビン/GDF−11応答性受容体細胞株を生成した。ミオスタチン/アクチビン応答要素(Dennlerら, EMBO 17:3091−3100 (1998))に相当するCAGA配列の12の反復を、TATAボックスの上流で、pLuc−MCSレポーターベクター(Stratageneカタログ番号219087)内にクローニングすることによって、pMARE−luc構築物を作製した。筋芽細胞C2C12細胞は、天然に、その細胞表面上に、ミオスタチン/アクチビン/GDF−11受容体、アクチビン受容体IIBを発現する。ミオスタチン/アクチビンA/GDF−11が細胞受容体に結合すると、Smad経路が活性化され、そしてリン酸化されたSmadが応答要素に結合し(Macias−Silvaら, Cell 87:1215 (1996))、ルシフェラーゼ遺伝子の発現を生じる。次いで、製造者のプロトコルにしたがって、商業的ルシフェラーゼレポーターアッセイキット(カタログ番号E4550、Promega、ウィスコンシン州マディソン)を用い、ルシフェラーゼ活性を測定する。pMARE−lucでトランスフェクションされている安定C2C12細胞株(C2C12/pMAREクローン#44)を用い、以下の方法にしたがって、活性を測定した。レポーター細胞(C2C12/pMAREクローン#44)を96ウェル培養に蒔いた。4nMミオスタチン、20nMアクチビン、および4nM GDF−11で固定した濃度で、各種類の可溶性受容体の希釈を用いて、スクリーニングを行った。ミオスタチン、アクチビンおよびGDF−11を、各々、いくつかの濃度の可溶性受容体とプレインキュベーションした。処理した培養物において、ルシフェラーゼ活性を測定することによって、ミオスタチン/アクチビン/GDF−11活性を測定した。以下の表1に示すように、各可溶性受容体に関して、IC50値を決定した。
製造者の使用説明書にしたがって、BIAcore(登録商標)アッセイ系を用いて、2つの可溶性受容体ActRIIB−ECD/FcおよびActRIIB5/Fcの各々の存在下および非存在下で、CM5チップ(Biacore, Inc.、ニュージャージー州ピスカタウェイ)上で、固定ヒトActRIIB−ECD/Fc(R&D Systems、ミネソタ州ミネアポリス)を用いて、遮断アッセイを行った。
出生後動物におけるアクチビンの出生後の役割を研究するため、AAV仲介遺伝子導入を用いて、マウスにおいてアクチビンAを過剰発現させた。年齢がマッチした若い成体(5週齢)雌C57Bl/6マウス(Charles River Laboratories、マサチューセッツ州ウィルミントン)を2つの体重均衡群(n=6/群)に分けて、続いて、門脈を介して、これらに、1X1013pfu/マウスのAAV−アクチビンAまたはAAV−空ベクター(対照)のいずれかを注射した。体重および体組成に対する効果を分析した。AAV−アクチビンA形質導入群は、AAV−空ベクターで形質導入された対照マウスに比較して、体重の劇的な減少を示した。AAV注射後、2週間以内に、アクチビンA形質導入群は、非常に悪液質性となり、平均体重は空ベクター形質導入対照群のものの約1/2しかなかった。剖検によって、AAV−アクチビンA投与が、除脂肪体重、骨格筋量および脂肪量のおよそ60%の劇的な枯渇を生じたことが明らかになった。さらに、アクチビン形質導入マウスはまた、肝臓および心臓などの有意に減少した臓器重量によって示されるように、臓器の重度の萎縮も示した。
年齢がマッチした(5週齢)C57Bl/6雄マウスを、5つの群(群あたりn=10)に分けた。以下のようなAAVウイルス粒子をパッケージングし、そして注射前に用量設定した:AAV−空、AAV−アクチビンA、AAV−ActRIIB5/Fc、AAV−ActRIIB−ECD/Fc、およびAAV−ProMyo/Fc、ここで、AAV−ProMyoはミオスタチンのプロペプチドを表す。1x1012pfu/マウスの減少した量のウイルス粒子を注射した、AAV−アクチビンAを例外として、上記AAVウイルスの各々に、8x1012pfu/マウスを注射した(n=10/群)。門脈を介して、ウイルス粒子を注射した。1日おきに体重を測定した。結果を図2に示す。AAV−ActRIIB5/Fc群およびAAV−ActRIIB−ECD/Fc群は、AAV−ベクター対照群に比較して増加した体重、ならびにAAV−ProMyo/Fc群に比較して増加した体重を発展させた。2つの可溶性受容体群を比較すると、AAV−ActRIIB5/Fc群は、最大量の体重獲得増加を示した。対照的に、AAV−ベクター対照群は、AAV−ベクター対照群に比較して、体重の劇的な減少を示した。
各11匹の動物(実験終了時、群あたり8匹の動物)のAy肥満マウス(Jackson Laboratories、メイン州バーハーバー)の2群に、それぞれ、AAV−空ベクターおよびAAV−ActRIIB5/Fcベクターを注射した。各マウスの門脈内に8x1012pfu/マウスのウイルスを注射した。次いで、注射後3ヶ月の期間に渡って、体重、食料摂取、除脂肪筋量および脂肪量の変化に関して、マウスを監視した。マウスケージ中の食べずに残った食料を毎日重量測定し、そして週摂取量を計算することによって、食料摂取を決定した。上述のように、NMRによって、除脂肪筋量および脂肪量を決定した。実験結果を図4および5に示す。図4Aは、体重減少を示し、そして図4Bは、対照マウスに比較した、AAV−ActRIIB5/Fcマウスにおける週食料摂取の減少を示す。図5Aは、AAV−ActRIIB5/Fcに関するNMRによって決定されるような除脂肪量の増加を示し、一方、図5Bは、対照マウスに比較した、およそ50%のAAV−ActRIIB5/Fcに関する脂肪量の大きな減少を示す。
Claims (33)
- (a)配列番号1に示すポリヌクレオチド配列またはその相補体を有するポリヌクレオチド;
(b)配列番号2に示すアミノ酸配列からなるポリペプチドをコードするポリヌクレオチド;および
(c)高ストリンジェントの条件下で、(a)または(b)のいずれかにハイブリダイズし、そしてコードされるポリペプチドが配列番号3に示すアミノ酸配列を有するC末端を含み、そして該ポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、ポリヌクレオチド配列からなるポリヌクレオチド;及び
(d)高ストリンジェントの洗浄条件下で、(a)または(b)のいずれかにハイブリダイズし、そしてコードされるポリペプチドが配列番号3に少なくとも90%同一であるアミノ酸配列を有するC末端を含み、そして該ポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、ポリヌクレオチド配列からなるポリヌクレオチド
からなる群より選択されるポリヌクレオチドを含む、単離核酸分子。 -
ポリペプチドをコードするポリヌクレオチドを含む、単離核酸分子であって、コードされるポリペプチドが、配列番号2に示すアミノ酸配列に少なくとも90%同一であるアミノ酸配列を有し、そして、配列番号3に示すアミノ酸配列を有するC末端を含む、前記単離核酸分子。 - ポリペプチドをコードするポリヌクレオチドを含む単離核酸分子であって、コードされるポリペプチドが、配列番号2に示すアミノ酸配列に少なくとも90%同一であるアミノ酸配列を有し、そして、配列番号3に少なくとも90%同一であるアミノ酸配列を有するC末端を含む、前記単離核酸分子。
- 核酸分子が、アクチビンIIB5型受容体をコードするポリヌクレオチドとインフレームである少なくとも1つの異種タンパク質をコードするポリヌクレオチドをさらに含む、請求項1の単離核酸分子。
- 異種タンパク質がFcポリペプチドである、請求項4の単離核酸分子。
- Fcがリンカーペプチドによって付着している、請求項5の単離核酸分子。
- 配列番号1に示す配列からなるポリヌクレオチドを含む、単離核酸分子。
- ポリヌクレオチドが、転写または翻訳制御配列に機能可能であるように連結されている、請求項1〜7のいずれか1項の核酸分子。
- 転写または翻訳配列が転写プロモーターまたはエンハンサーを含む、請求項8の核酸分子。
- 請求項1の核酸分子を含む、組換えベクター。
- (a)配列番号2に示すアミノ酸配列からなるポリペプチド;
(b)配列番号2に少なくとも90%の同一性を有するアミノ酸配列からなるポリペプチドであって、ミオスタチン、アクチビンAまたはGDF−11に結合可能である、前記ポリペプチド
(c)ポリペプチドのC末端が配列番号3に示すアミノ酸配列を含み;そしてポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、(b)のポリペプチド;および
(d)ポリペプチドのC末端が配列番号3に少なくとも90%の同一性を有するアミノ酸配列を含み;そしてポリペプチドがミオスタチン、アクチビンA、またはGDF−11に結合可能である、(b)のポリペプチド
からなる群より選択される、アクチビンIIB5型受容体ポリペプチドを含む、単離タンパク質。 - 配列番号2に示すアミノ酸配列からなるアクチビンIIB5型受容体ポリペプチドを含む、単離タンパク質。
- 配列番号2のアミノ酸配列において、アミノ酸残基64がアラニンに置換されているアミノ酸配列からなるタンパク質。
- 配列番号1に示すポリヌクレオチドにコードされるポリペプチドを含む、単離タンパク質。
- ポリペプチドが少なくとも1つの異種ポリペプチドに融合している、請求項11のタンパク質。
- 異種タンパク質がFcポリペプチドである、請求項15のタンパク質。
- Fcポリペプチドが、リンカー配列を介して付着している、請求項16のタンパク質。
- 請求項1の核酸分子を発現するように、請求項10の組換えベクターによって形質転換された宿主細胞。
- 宿主細胞が哺乳動物細胞である、請求項18の宿主細胞。
- 請求項11のタンパク質を産生するように、請求項10の組換えベクターによって形質転換された宿主細胞。
- 宿主細胞が哺乳動物細胞である、請求項20の宿主細胞。
- アクチビンIIB5受容体ポリペプチドを産生する方法であって、ポリペプチドの発現を促進する条件下で、請求項21の宿主細胞を培養し、そして該ポリペプチドを回収する工程を含む、前記方法。
- 薬学的に許容されうるキャリアーと混合された、請求項11のアクチビンIIB5型受容体タンパク質を含む、薬学的組成物。
- ミオスタチン活性を阻害する必要がある被験体において、ミオスタチン活性を阻害するための、請求項23の薬学的組成物。
- 除脂肪(lean)筋量を増加させる必要がある被験体において、除脂肪筋量を増加させるための、請求項23の薬学的組成物。
- 脂肪に対する除脂肪筋量の比を増加させる必要がある被験体において、脂肪に対する除脂肪筋量の比を増加させるための、請求項23の薬学的組成物。
- 疾患などに罹患した被験体において、筋萎縮(muscle−wasting)疾患を治療するための、請求項23の薬学的組成物。
- 疾患が癌悪液質である、請求項27の薬学的組成物。
- 疾患が、筋ジストロフィー、筋萎縮性側索硬化症、うっ血性閉塞性肺疾患、慢性心不全、癌悪液質、AIDS、腎不全、尿毒症、関節リウマチ、年齢に関連するサルコペニア、臓器萎縮、手根管症候群、アンドロゲン枯渇、ならびに長期間の絶対安静、脊椎傷害、脳卒中、骨折、および加齢による筋萎縮から選択される、請求項27の薬学的組成物。
- 被験体においてアクチビンが過剰発現されている疾患を治療するための、請求項23の薬学的組成物
- 被験体が食用動物である、請求項25の薬学的組成物。
- 請求項10のベクターを含む、筋萎縮障害を治療するための薬学的組成物であって、ベクターが被験体におけるActRIIB5ポリペプチドの発現を指示可能な、前記薬学的組成物。
- ベクターがAAVベクターである、請求項32の薬学的組成物。
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- 2006-11-01 ES ES06827481T patent/ES2385581T3/es active Active
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- 2011-07-25 US US13/190,255 patent/US8614292B2/en active Active
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- 2012-08-02 JP JP2012171705A patent/JP2013027391A/ja active Pending
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- 2013-11-20 US US14/085,056 patent/US9284364B2/en active Active
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- 2016-02-03 US US15/014,889 patent/US20160152683A1/en not_active Abandoned
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Cited By (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2013027391A (ja) * | 2005-11-01 | 2013-02-07 | Amgen Inc | 新規アクチビン受容体およびその使用 |
| JP2014195469A (ja) * | 2005-11-01 | 2014-10-16 | アムジェン インコーポレイテッド | 新規アクチビン受容体およびその使用 |
| JP2016187361A (ja) * | 2005-11-01 | 2016-11-04 | アムジェン インコーポレイテッド | 新規アクチビン受容体およびその使用 |
| US9610327B2 (en) | 2007-03-06 | 2017-04-04 | Amgen Inc. | Variant activin receptor polypeptides, alone or in combination with chemotherapy, and uses thereof |
| US9809638B2 (en) | 2007-03-06 | 2017-11-07 | Amgen Inc. | Variant activin receptor |
| US10407487B2 (en) | 2007-03-06 | 2019-09-10 | Amgen Inc. | Variant activin receptor |
| US10308704B2 (en) | 2008-11-26 | 2019-06-04 | Amgen Inc. | Isolated nucleic acid molecules encoding stabilized receptor polypeptides and uses thereof |
| US11685770B2 (en) | 2008-11-26 | 2023-06-27 | Amgen Inc. | Stabilized receptor polypeptides and uses thereof |
| US11541070B2 (en) | 2013-02-01 | 2023-01-03 | Atara Biotherapeutics, Inc. | Administration of an anti-activin-A compound to a subject |
Also Published As
| Publication number | Publication date |
|---|---|
| ATE554101T1 (de) | 2012-05-15 |
| JP2009513162A (ja) | 2009-04-02 |
| US20140088008A1 (en) | 2014-03-27 |
| US20110281796A1 (en) | 2011-11-17 |
| JP2013027391A (ja) | 2013-02-07 |
| EP1943273A1 (en) | 2008-07-16 |
| US8614292B2 (en) | 2013-12-24 |
| US9284364B2 (en) | 2016-03-15 |
| US8067562B2 (en) | 2011-11-29 |
| CA2627200A1 (en) | 2007-05-10 |
| WO2007053775A1 (en) | 2007-05-10 |
| CA2627200C (en) | 2013-09-10 |
| EP1943273B1 (en) | 2012-04-18 |
| ES2385581T3 (es) | 2012-07-26 |
| JP2016187361A (ja) | 2016-11-04 |
| US20160152683A1 (en) | 2016-06-02 |
| JP6072731B2 (ja) | 2017-02-01 |
| JP2014195469A (ja) | 2014-10-16 |
| AU2006308614A1 (en) | 2007-05-10 |
| AU2006308614B2 (en) | 2011-11-17 |
| US20070117130A1 (en) | 2007-05-24 |
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