JP2015232005A - Gitr結合分子およびその使用 - Google Patents
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Abstract
【解決手段】刺激剤、例えば、CD3の存在下で、hGITRに高いアフィニティーで結合することを特徴とし、アゴニスト的であり、Treg細胞によるTeff細胞の抑制を取り消すGITR結合分子。種々のアスペクトは、結合分子、及びその医薬組成物、並びにそのような結合分子を作製するための核酸、組換え発現ベクターおよび宿主細胞。結合分子を用いて、インビトロ又はインビボでヒトGITRを検出し、またはヒトGITR活性を調節する方法。
【選択図】なし
Description
本願は、2005年3月25日に出願された、「GITR結合分子およびその使用」という発明の名称の米国仮特許出願第60/665322号、および2005年6月3日に出願された、「GITR結合分子およびその使用」という発明の名称の米国仮特許出願第60/687265号の優先権を主張する。それぞれの内容を本明細書において引用によって援用する。
腫瘍壊死因子およびTNFレセプター(TNFR)スーパーファミリーのメンバーは、細胞増殖、分化および生存といった、多様な生物学的機能を調節する。全身性グルココルチコイドホルモンデキサメサゾンによって誘発されるT細胞mRNAを同定するためにディファレンシャルディスプレイを用いて、Nocentini et al. ((1997) Proc. Natl. Acad. Sci., USA 94:6216-6221997)は、TNFRファミリーの新規のメンバーをコードするマウスcDNAを同定した。対応する遺伝子は、glucocorticoid -induced TNFR(グルココルチコイド誘発性TNFR)ファミリー関連遺伝子を表して、GITR(TNFRSF18としても知られている)と名づけられた。他のTNFRと同様に、予測されるGITRタンパク質は、システインリッチの繰り返し部分を細胞外ドメインに含有する。さらに、GITRの細胞内ドメインは、マウスおよびヒトTNFR、4−1BBおよびCD27のそれと有意なホモロジーを共有している。Nocentini et al. ((1997) Proc. Natl. Acad. Sci., USA 94:6216-6221997)は、GITR遺伝子がデキサメサゾンおよび他の細胞活性化刺激によって、T細胞中において誘発されることを証明した。GITR発現は、抗CD3抗体を用いた処置によって誘発されるアポトーシス(但し、他のアポトーシス物質によるものではない)からT細胞を保護している。
本発明は、T細胞や樹状細胞などの細胞上で、GITR、例えば、ヒトGITR(hGITR)に特異的に結合する結合分子を提供する。本発明の結合分子は、hGITRに高アフィニティーで結合し、刺激剤、例えば、CD3の存在下でアゴニストとなり、Tエフェクター(Teff)細胞のT調節(Treg)細胞による抑制を取り消すことを特徴とする。
本明細書において用いられている用語「グルココルチコイド誘発TNFレセプター」(「GITR」と略される)は、TNFレセプタースーパーファミリー18(TNFRSF18)としても知られており、腫瘍壊死因子/神経成長因子レセプターファミリーのメンバーである。それは、細胞外ドメインにある3つのシステイン・シュードリピートを特徴とする241アミノ酸タイプI膜貫通タンパク質であり、T細胞レセプター誘発アポトーシスを特異的に保護するが、Fasトリガー、デキサメサゾン処置、またはUV照射を含む他のアポトーシスシグナルから細胞を保護しない(Nocentini, G, et al. (1997) Proc. Natl. Acad. Sci., USA 94:6216-622)。ヒトGITR(hGITR)の核酸配列を配列番号:17に示し、アミノ酸配列を配列番号:18に示す。
本発明は、単離されたGITR結合分子を提供する。本発明の結合分子の例としては、6C8抗体および2F8抗体がある。6C8抗体は、T細胞および樹状細胞、例えば、ヒトT細胞および樹状細胞上で、GITRに高アフィニティーで結合する抗GITR抗体である。 好ましくは、そのような結合分子は、T調節細胞によるTエフェクター細胞の抑制を取り消し、そして、部分的に活性化されたT細胞に対して インビトロ で刺激剤、例えば、CD3の存在下で、アゴニスト性を示す。
ADAAPTVSIFPPSSEQLTSGGASVVCFLNNFYPKDINVKWKIDGSERQNGVLNSWTDQDSKDSTYSMSSTLTLTKDEYERHNSYTCEATHKTSTSPIVKSFNRNE(配列番号:20);
AKTTPPSVYPLAPGCGDTTGSSVTLGCLVKGYFPESVTVTWNSGSLSSSVHTFPALLQSGLYTMSSSVTVPSSTWPSQTVTCSVAHPASSTTVDKKLEPSGPISTINPCPPCKECKCPAPNLEGGPSVFIFPPNIKDVLMISLTPKVTCVVVDVSEDDPDVQISWFVNNVEVHTAQTQTHREDYNSTIRVVSTLPIQHQDWMSGKEFKCKVNNKDLPSPIERTISKIKGLVRAQVYILPPPAEQLSRKDVSLTCLVVGFNPGDISVEWTSNGHTEENYKDTAPVLDSDGSYFIYSKLNMKTSKWEKTDSFSCNVRHEGLKNYYLKKTISRSPGK(配列番号:20)。
EIVMTQSPATLSVSPGERATLSCRASQSVSSNLAWYQQKPGQAPRLLIYGASTRATGIPARFSGSGSGTEFTLTISSLQSEDFAVYYCQQYNNWP(配列番号:25)である。
EIVLTQSPATLSLSPGERATLSCRASQGVSSYLAWYQQKPGQAPRLLIYDASNRATGIPARFSGSGPGTDFTLTISSLEPEDFAVYYCQQRSNWH(配列番号:26)である。
EIVLTQSPATLSLSPGERATLSCRASQSVSSYLAWYQQKPGQAPRLLIYDASNRATGIPARFSGSGSGTDFTLTISSLEPEDFAVYYCQQRSNWP(配列番号:27)である。
EIVLTQSPATLSLSPGERATLSCRASQSVSSYLAWYQQKPGQAPRLLIYDASNRATGIPARFSGSGSGRDFTLTISSLEPEDFAVYYCQQRSNWP(配列番号:28)である。
AIRMTQSPFSLSASVGDRVTITCWASQGISSYLAWYQQKPAKAPKLFIYYASSLQSGVPSRFSGSGSGTDYTLTISSLQPEDFATYYCQQYYSTP(配列番号:29)である。
DIQMTQSPSSLSASVGDRVTITCRASQSISSYLNWYQQKPGKAPKLLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQSYSTP(配列番号:30)である。
DIQMTQSPSFLSASVGDRVTITCRASQSISSYLNWYQQKPGKAPKLLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQCGYSTP(配列番号:31)である。
DIQMTQSPSSLSASVGDRVTITCQASQDISNYLNWYQQKPGKAPKLLIYDASNLETGVPSRFSGSGSGTDFTFTISSLQPEDIATYYCQQYDNLP(配列番号:32)である。
DIQMTQSPSSLSASVGDRVTITCRASQGISNYLAWYQQKPGKVPKLLIYAASTLQSGVPSRFSGSGSGTDFTLTISSLQPEDVATYYCQKYNSAP(配列番号:33)である。
DIQMTQSPSSLSASVGDRVTITCRASQGIRNDLGWYQQKPGKAPKRLIYAASSLQSGVPSRFSGSGSGTEFTLTISSLQPEDFATYYCLQHNSYP(配列番号:34)である。
DIQMTQSPSSLSASVGDRVTITCRASQGIRNDLGWYQQKPGKAPKRLIYAASSLQSGVPSRFSGSGSGTEFTLTISNLQPEDFATYYCLQHNSYP(配列番号:35)である。
DIQMTQSPSSLSASVGDRVTITCRASQGISSWLAWYQQKPEKAPKSLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQYNSYP(配列番号:36)である。
DIQMTQSPSSLSASVGDRVTITCRARQGISSWLAWYQQKPEKAPKSLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQYNSYP(配列番号:37)である。
DIQMTQSPSSLSASVGDRVTITCRASQGISNYLAWFQQKPGKAPKSLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQYNSYP(配列番号:38)である。
DIQMTQSPSSVSASVGDRVTITCRASQGISSWLAWYQQKPGKAPKLLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQANSFP(配列番号:39)である。
DIQMTQSPSSVSASVGDRVTITCRASQGISSWLAWYQQKPGKAPKLLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCQQANSFP(配列番号:40)である。
DIQLTQSPSFLSASVGDRVTITCRASQGISSYLAWYQQKPGKAPKLLIYAASTLQSGVPSRFSGSGSGTEFTLTISSLQPEDFATYYCQQLNSYP(配列番号:41)である。
AIQMTQSPSSLSASVGDRVTITCRASQGIRNDLGWYQQKPGKAPKLLIYAASSLQSGVPSRFSGSGSGTDFTLTISSLQPEDFATYYCLQDYNYP(配列番号:42)である。
DIQMTQSPSTLSASVGDRVTITCRASQSISSWLAWYQQKPGKAPKLLIYDASSLESGVPSRFSGSGSGTEFTLTISSLQPDDFATYYCQQYNSYS(配列番号:43)である。
QITLKESGPTLVKPTQTLTLTCTFSGFSLSTSGVGVGWIRQPPGKALEWLALIYWNDDKRYSPSLKSRLTITKDTSKNQVVLTMTNMDPVDTATYY(配列番号:45)である。
QVTLKESGPVLVKPTETLTLTCTVSGFSLSNARMGVSWIRQPPGKALEWLAHIFSNDEKSYSTSLKSRLTISKDTSKSQVVLTMTNMDPVDTATYYCARI(配列番号:46)である。
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMCVSWIRQPPGKALEWLALIDWDDDKYYSTSLKTRLTISKDTSKNQVVLTMTNMDPVDTATYYCARI(配列番号:47)である。
QLQLQESGSGLVKPSQTLSLTCAVSGGSISSGGYSWSWIRQPPGKGLEWIGYIYHSGSTYYNPSLKSRVTISVDRSKNQFSLKLSSVTAADTAVYYCAR(配列番号:48)である。
QVQLQESGPGLVKPSQTLSLTCTVSGGSISSGDYYWSWIRQPPGKGLEWIGYIYYSGSTYYNPSLKSRVTISVDTSKNQFSLKLSSVTAADTAVYYCAR(配列番号:49)である。
QVQLQESGPGLVKPSQTLSLTCTVSGGSISSGGYYWSWIRQHPGKGLEWIGYIYYSGSTYYNPSLKSLVTISVDTSKNQFSLKLSSVTAADTAVYYCAR(配列番号:50)である。
QLQLQESGPGLVKPSETLSLTCTVSGGSISSSSYYWGWIRQPPGKGLEWIGSIYYSGSTYYNPSLKSRVTISVDTSKNQFSLKLSSVTAADTAVYYCAR(配列番号:51)である。
QVQLQESGPGLVKPSETLSLTCTVSGGSVSSGSYYWSWIRQPPGKGLEWIGYIYYSGSTNYNPSLKSRVTISVDTSKNQFSLKLSSVTAADTAVYYCAR(配列番号:52)である。
(QVTLKESGPGILQPSQTLSLTCSFSGFSLSTSGMGVGWIRQPSGKGLEWLAHIWWDDDKYNPSLKSRLTISKDTSSNQVFLKITSVDTRDTATYYCARTRRYFPFAYWGEGTSVTVTS(配列番号:67;フレームワーク残基を太字で示している)。別の態様において、配列番号:68に記載のフレームワーク配列は、
(QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYNPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSS(配列番号:68;フレームワーク残基を太字で示している))。
III.結合分子の作製
IV.結合分子の発現
a)配列番号2のアミノ酸配列を含む可変領域を有する結合分子軽鎖;および
b)配列番号1のアミノ酸配列を含む可変領域を有する結合分子重鎖。
a)配列番号2のアミノ酸配列を含む可変領域を有する結合分子軽鎖;および
b)配列番号66のアミノ酸配列を含む可変領域を有する結合分子重鎖。
GITRに対して結合する能力があれば、本発明の結合分子は、GITR(例えば、血清もしくは血漿などの生物学的サンプル中)を、従来のイムノアッセイ、例えば、酵素結合抗体免疫アッセイ(ELISA)、ラジオイムノアッセイ(RIA)もしくは組織免疫組織化学的手法を用いて検出するために用いることができる。本発明は、生物学的サンプル中のhGITRを検出するための方法であって、生物学的サンプルを本発明の結合分子に接触させ、およびhGITRに結合した結合分子または未結合の結合分子のいずれかを検出し、それによって、生物学的サンプル中のhGITRを検出することを含む方法を提供する。該方法は、インビトロまたはインビボのいずれで行うこともできる。該結合分子は、検出可能な物質を用いて、直接的または間接的に標識し、結合した結合分子または未結合の結合分子の検出を容易にすることができる。好適な検出可能な物質としては、種々の酵素、補欠分子団、蛍光物質、発光性物質、および放射性物質が挙げられる。好適な酵素の例には、西洋ワサビペルオキシダーゼ、アルカリ性ホスファターゼ、β−ガラクトシダーゼ、またはアセチルコリンエステラーゼが含まれる。好適な補欠分子団の例には、ストレプトアビジン/ビオチンおよびアビジン/ビオチンが含まれ、好適な蛍光物質の例には、ウンベリフェロン、フルオレセイン、フルオレセインイソチオシアネート、ローダミン、ジクロロトリアジニルアミンフルオレセイン、ダンシルクロリドもしくはフィコエリトリンが含まれ、発光性物質の例にはルミノールが含まれる;好適な放射性物質の例には、125I、131I、35Sもしくは3Hが含まれる。
添付の実施例に記載しているように、本発明の結合分子は、免疫促進性組成物(またはワクチン)として、例えば、抗原と組み合わせて使用して、対象となる抗原(例えば、被験体におけるタンパク質抗原)に対する免疫応答を促進させるために使用することができる。すなわち、本発明の結合分子は、免疫応答を高めるためのアジュバントとして機能することができる。例えば、対象となる抗原に対する抗体または細胞免疫応答を刺激するために(例えば、ワクチン接種の目的)、本発明の抗原および結合分子を併用して投与する(例えば、同じもしくは別個の組成物で同時に併用投与する、または連続的に併用投与する)ことができ、その結果、免疫応答が上昇する。対象となる抗原および結合分子はいっしょに、単一の医薬組成物として製剤することもできるし、または別個の組成物として製剤することもできる。ある態様において、対象となる抗原および結合分子を被験体に同時に投与する。別法として、いくつかの状況においては、まず抗原を投与し、その後結合分子を投与する、またはその逆が望ましいかもしれない(例えば、反応を引き起こすためにまず抗原のみを投与し、その後結合分子を癌毒もしくは抗原の追加免疫とともに、投与することが好ましいかもしれない)。好ましい態様において、本発明のGITR結合分子を、抗原によるプライミングと同時に、すなわち、最初の抗原投与と同時に、例えば、−3、−2、−1、0、+1、+2、+3日目に投与する。本発明のGITR結合分子の特に好ましい投与日は、抗原投与の前日である。
当該結合分子は、免疫応答を高める方法にも使用することができる。免疫応答のアップレギュレーションは、存在する免疫応答を高める、もしくは最初の免疫応答を惹起するのいずれの形態であってもよい。例えば、GITRの調節によって免疫応答を高めることは、ウイルス性感染症の場合に有用であるかもしれない。抗GITR結合分子は、免疫応答を高めるように作用するので、それらは、より急速もしくはより徹底的な病原性物質(例えば、細菌およびウイルス)の排除が有益な場合に、治療的に有用である。したがって、本発明の抗GITR結合分子は、単独または抗原もしくは免疫促進性の物質との組み合わせのいずれかにおいて、治療的に用いて、感染症や悪性腫瘍などの疾患や状態(例えば、上記参照)をもつ被験体を治療することができる。
本発明の結合分子は、被験体へ好適に投与される医薬組成物に組み込む。典型的に、医薬組成物は、本発明の結合分子 および薬学的に許容される担体を含む。本明細書において用いられている用語「薬学的に許容される担体」には、薬学的投与に適合する、溶媒、分散媒、コーティング、抗菌剤および抗カビ剤、等張剤および吸収遅延剤等が含まれる。薬学的に活性な物質のためのこのような媒質および薬剤の使用は、当業で公知である。従来の媒質または薬剤が当該活性化合物に対して不適合でない限り、治療用組成物中へのその使用は考慮される。補助的な活性化合物も本組成物中に取り入れることができる。
本発明の結合分子は、インビボまたはインビトロでの医薬投与に適した生物学的に適合性ある形で被験体に投与される。「生物学的に適合性ある形」とは、毒性の効果が、当該作用薬の治療効果よりも小さいような作用薬の形を意味する。
いくつかの実施例において、以下の材料と方法を用いる。
分化細胞系列を、ヒト臍帯血または末梢血CD4+CD45RA+未処置のT細胞から、フローサイトメトリーおよび磁気ビーズ分離法を含む種々の方法により調製された細胞から作製した。開始集団の純度は>95%だった。次に細胞を、10%FCSおよび1%ヒトAB血清と、サイトカインおよび抗サイトカイン中和化抗体との規定された混合液を含むCD3およびCD28抗体のRPMI1640溶液で刺激して、分化細胞種を作製した。Th1細胞をIL12(62U/ml)および抗IL4(0.2ug/ml)との培養で産生させ;Th2細胞を、IL4(145U/ml)および抗IL12(10ug/ml)および抗IFNγ(10ug/ml)中での培養で産生させ;そして制御性T細胞をTGFβ(32U/ml)、IL9(42U/ml)、抗IL4(10ug/ml)および抗IL12(10ug/ml)および抗IFNγ(10ug/ml)中での培養で産生させた。(注:抗IL12はすべての実験で用いられたわけではない)。培養物すべてに、IL2(65U/ml)およびIL15(4500U/ml)を添加した。細胞を、細胞分裂で可能な場合に、より大型の培養皿に分け取った。
6C8抗体は、IgG2bカッパである。この抗体を精製することによって、二重の重鎖の存在が明らかになった(図1)。これは、グリコシル化または他のAbの混在のいずれかによるものであろう。立体排除クロマトグラフィーによって、1つのピークの存在が示された。
1)20mlのプロテインG(Protein G、Pharmacia HR 10/30)を5CVのdPBSで洗浄した。
2)1L(ラン1)または2L(ラン2)のhGITR(6C8)上清を入れた。
3)10CVのdPBSで洗浄した。
4)100mMクエン酸塩、pH2.8を直接1Mトリス(20−25%、v:v)に溶出させた。
5)100mMクエン酸塩、pH2.8、0.3MのNaClで除去した。
6C8抗体は、GITR−L−Mトランスフェクトされた細胞および活性化されたPBL(図4)に結合する(図3)。および活性化されたリンパ球上のビオチン標識された抗GITRの飽和曲線は、良好な相対的アフィニティーを示唆している(図5)。
6C8抗体は、T調節細胞によって誘発された抑制をブロックすることができる(図9)。CD4+/CD25+細胞をCD4+/CD25−細胞に、種々の比率で添加した。該細胞をプレートに結合した抗CD3および抗CD28で刺激した。1:1の比率で、CD4+/CD25+細胞はCD4+/CD25−細胞の増殖を取り消すことができる。6C8の培養物への添加によって、容量依存的に抑制をブロックすることができた。
I−κBリン酸化(図12および14)およびそれに続く分解(図11および13)の双方によって評価されるように、T細胞のCD3またはCD3とCD28を介しての活性化の結果、I−κBシグナリング経路の活性化が起こる。
B16メラノーマ腫瘍モデルは、癌細胞におけるT調節細胞の役割を研究するために用いられてきた攻撃的なメラノーマモデルである。枯渇作用をする抗CD25抗体もしくは抗CTLA−4を用いてマウスを治療することで、有望な結果がこのモデルにおいて認められる。双方のケースにおいて、治療は、腫瘍の開始および腫瘍サイズを遅らせることができる。GITRは、CD25+細胞において発現し、T調節細胞の抑制を止めることに関与するかもしれない。B16腫瘍を持つマウスを抗GITR結合分子で治療して、腫瘍の開始または腫瘍細胞に影響を及ぼすかどうかを測定した。マウスに腫瘍を注入した1日後に、抗GITR結合分子を用いた治療を行ったところ、腫瘍の発生およびサイズが遅延した(図17)。さらに、実験終了時、腫瘍がなかったGITR治療群にはまだマウスが存在していた。
抗mGITR抗体が卵白アルブミン(Ova)もしくは赤血球凝集素(HA)に対する体液反応のアジュバントをさらに調べた。1日前、0日目、1日目に、マウスを抗体なし、YAML(アイソタイプ対照)、または2F8(ラット抗mGITR)を用いて、0.4mg/日で治療した。結合分子の作用機序におけるFcレセプターの関与の重要性を評価するために、さらに別の群の動物を6mg/日の2F8F(ab’)2を用いて、1日前、0日目、1日目に治療した。この投与量は、抗体全体と比較して短い半減期のF(ab’)2に基づいて選択された。マウスを0日目に、Ova(100μg)またはHA(10μg)で免疫した。Ova治療マウスに対して、100μgのOvaを14日目に攻撃感染し、21日目および28日目に採血してELISAアッセイのための血清サンプルを取得した。HA治療マウスにもを14日目に攻撃感染し、21日目および28日目に採血した。
6C8可変軽鎖領域を、従来の生物学的技法を用いて、ヒト軽鎖定常領域に移植した。IgG1軽鎖定常領域を用いた。完全キメラ軽鎖GITR結合分子のアミノ酸配列を以下に示す:
DIVMTQSQKFMSTSVGDRVSVTCKASQNVGTNVAWYQQKPGQSPKALIYSASYRYSGVPDRFTGSGSGTDFTLTINNVHSEDLAEYFCQQYNTDPLTFGAGTKLEIKRTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC(配列番号:22)。
QVTLKESGPGILKPSQTLSLTCSFSGFSLSTSGMGVGWIRQPSGKGLEWLAHIWWDDDKYYNPSLKSQLTISKDTSRNQVFLKITSVDTADAATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:23)。
QVTLKESGPGILKPSQTLSLTCSFSGFSLSTSGMGVGWIRQPSGKGLEWLAHIWWDDDKYYNPSLKSQLTISKDTSRNQVFLKITSVDTADAATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYASTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:24)。
Hwang et al. (2005) Methods (36) 35-42に記載されているCDRホモロジーベースのストラテジーを用いて6C8をヒト化した。重鎖および軽鎖アミノ酸配列を、公開されている利用可能なデータベースを用いてブラストした。その結果によれば、6C8は、3−1重鎖正準構造および2−1−1軽鎖正準構造を持つことが示された。これにより、IMGTデータベース中の2−1−1正準構造を持つ全ての生殖細胞系列κ鎖V遺伝子を6C8抗体配列と比較した。同じことを重鎖についても行い、そこでは、全ての3−1生殖細胞系列重鎖V遺伝子を6C8アミノ酸配列と比較した。CDR配列のみを比較し、フレームワークは、CDRにおいてどの生殖細胞系列配列が最も多くのマッチングを示すかに基づいて選択した(下のアライメントを参照されたい)。
EIVMTQSPATLSVSPGERATLSCKASQNVGTNVAWYQQKPGQAPRLLIYSASYRYSGIPARFSGSGSGTEFTLTISSLQSEDFAVYYCQQYNTDPLTFGGGTKVEIK(配列番号:44)(CDRをイタリック体で示している)。
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYNPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSS (配列番号:53)(「N」とも称する)。
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYQPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSS(配列番号:54)(「Q」とも称する)。
全長バージョン2(HuN6C8−Agly)−ヒト化(Hu)6C8軽鎖(L)/ヒト化重鎖、CDR2にNをもち(「N」)、Aをもつ定常領域を含む(「Agly」)。
全長バージョン3(HuN6C8−Gly)−ヒト化(Hu)6C8軽鎖(L)/ヒト化重鎖、CDR2にQをもち(「Q」)、Nをもつ定常領域を含む(「Gly」)。
全長バージョン4(HuN6C8−Agly)−ヒト化(Hu)6C8軽鎖(L)/ヒト化重鎖、CDR2にNをもち(「N」)、Aをもつ定常領域を含む(「Agly」)。
ASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:55)。
ASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYASTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:56)。
RTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC(配列番号:57)。
EIVMTQSPATLSVSPGERATLSCKASQNVGTNVAWYQQKPGQAPRLLIYSASYRYSGIPARFSGSGSGTEFTLTISSLQSEDFAVYYCQQYNTDPLTFGGGTKVEIKRTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC(配列番号:58)。
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYNPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:60);
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYNPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYASTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:61);
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYQPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:62)
QVTLRESGPALVKPTQTLTLTCTFSGFSLSTSGMGVGWIRQPPGKALEWLAHIWWDDDKYYQPSLKSRLTISKDTSKNQVVLTMTNMDPVDTATYYCARTRRYFPFAYWGQGTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYASTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSRDELTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK(配列番号:63)。
当業者は、ルーチンの実験以上のことをすることなく、本明細書に記載した本発明の具体的な実施形態に対する多くの均等物を認識、または確認することができるであろう。そのような均等物は、添付の請求項に包含されることが意図されている。
Claims (1)
- 配列番号:1のアミノ酸残基20〜138、または配列番号:66のアミノ酸残基20〜138を含む、GITR 結合分子。
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| CN114230666A (zh) * | 2021-12-20 | 2022-03-25 | 南京诺唯赞生物科技股份有限公司 | 一种t7 rna聚合酶的单克隆抗体及其制备方法 |
| CN114230666B (zh) * | 2021-12-20 | 2022-09-02 | 南京诺唯赞生物科技股份有限公司 | 一种t7 rna聚合酶的单克隆抗体及其制备方法 |
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