JP7467119B2 - 発現困難タンパク質のための多部位ssi細胞 - Google Patents
発現困難タンパク質のための多部位ssi細胞 Download PDFInfo
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Description
[0007]単一のゲノム挿入部位のみを有するSSI宿主の限界を克服するSSI宿主細胞株を生成することに対するニーズが存在する。本発明では、直列型のSSIランディングパッドを用いることによりこのニーズを満たすものであり、その際2つ以上のランディングパッドが同一の座位に組み込まれる、それにより累積的な部位特異的組込みの限界が克服されうる。かかる系では、ランディングパッドは(組換え部位及び選択マーカーの選択により)独立して部位指定可能である。
[0031]単語「1つの(a)」又は「1つの(an)」の使用は、特許請求の範囲及び/又は明細書中の「含む」という用語との関係で用いられるときは、「1つ」を意味する場合もあるが、また「1つ又は複数」、「少なくとも1つ」及び「1つ又は複数以上」を意味することとも整合する。
[0052]当業者は「NL1座位内で組み込まれる」又は「NL2座位内で組み込まれる」という用語が、座位のいかなる部分への組込みも包含し、それが示されるゲノム座標にのみ限定されないことを理解するであろう。当業者は「NL1座位内で組み込まれる」又は「NL2座位内で組み込まれる」という用語が、対応する生物における対応する座も包含するものと理解するであろう。したがって、いくつかの実施形態では、「NL1座位内で組み込まれる」又は「NL2座位内で組み込まれる」という用語は、示されるゲノム座標の約50,000bp以内、約40,000bp以内、約30,000bp以内、20,000bp以内又は10,000bp以内への組込みを包含するであろう。
[0065]いくつかの実施形態では、RTSは、表4から選択されるrox部位である。本願明細書に記載の用語「rox部位」は、Dreリコンビナーゼが部位特異的組換えを触媒できるヌクレオチド配列を指す。様々な同一でないrox部位が当技術分野で公知である。これらの(非限定的な)例としては、roxR及びroxFが包含される。いくつかの実施形態では、rox組換え標的部位は、表4に示す配列と少なくとも90%、91%、92%、93%、94%、95%、96%、97%、98%、99%又は100%の配列同一性を有する核酸である。
[0066]いくつかの実施形態では、RTSは、表5から選択されるatt部位である。本願明細書に記載の用語「att部位」は、λインテグラーゼ又はφC31インテグラーゼが部位特異的組換えを触媒できるヌクレオチド配列を指す。様々な同一でないatt部位が当技術分野で公知である。これらの(非限定的な)例としては、attP、attB、proB、trpC、galT、thrA及びrrnBが包含される。いくつかの実施形態では、att組換え標的部位は、表5に示す配列と少なくとも90%、91%、92%、93%、94%、95%、96%、97%、98%、99%又は100%の配列同一性を有する核酸である。
[0067]本願明細書に記載される用語「別個の組換え標的部位」は、同一でない、又は異種特異的な組換え標的部位を指す。例えば、いくつかのバリアントFrt部位が存在するが、組換えは通常、同一の2つのFrt部位の間でのみ起こりうる。いくつかの実施形態では、別個の組換え標的部位は、同じ組換え系(例えばLoxP及びLoxR)に由来する同一でない組換え標的部位を指す。いくつかの実施形態では、別個の組換え標的部位は、異なる組換え系(例えばLoxP及びFrt)に由来する同一でない組換え標的部位を指す。いくつかの実施形態では、別個の組換え標的部位は、同じ組換え系に由来する組換え標的部位と、異なる組換え系に由来する組換え標的部位との組合せ(例えばLoxP、LoxR、Frt及びFrt1)を指す。
)、L-19ベースの放射性免疫治療剤(癌)、Re-188 P-2045、AMG-386、DC/1540/KLHワクチン(癌)、VX-001、AVE-9633、AC-9301、NY-ESO-1ワクチン(ペプチド)、NA17.A2ペプチド、黒色腫ワクチン(治療的なパルス化抗原)、前立腺癌ワクチン、CBP-501、組換えヒトラクトフェリン(ドライアイ)、FX-06、AP-214、WAP-8294A(注射可能)、ACP-HIP、SUN-11031、ペプチドYY[3-36](肥満、鼻腔)、FGLL、アタシセプト(atacicept)、BR3-Fc、BN-003、BA-058、ヒト上皮小体ホルモン1-34(鼻、骨粗鬆症)、F-18-CCR1、AT-1100(セリアック病/糖尿病)、JPD-003、PTH(7-34)リポソームクリーム(ノバソーム)、デュラマイシン(眼、ドライアイ)、CAB-2、CTCE-0214、グリコPEG化エリスロポイエチン、EPO-Fc、CNTO-528、AMG-114、JR-013、因子XIII、アミノカンジン(aminocandin)、PN-951、716155、SUN-E7001、TH-0318、BAY-73-7977、テベレリックス(即時放出)、EP-51216、hGH(放出制御、バイオスフィア)、OGP-I、シフビルチド(sifuvirtide)、TV4710、ALG-889、Org-41259、rhCC10、F-991、チモペンチン(肺疾患)、r(m)CRP、肝選択インスリン、スバリン(subalin)、L19-IL-2融合タンパク質、エラフィン、NMK-150、ALTU-139、EN-122004、rhTPO、トロンボポエチン受容体アゴニスト(血小板減少障害)、AL-108、AL-208、神経成長因子アンタゴニスト(痛み)、SLV-317、CGX-1007、INNO-105、経口テリパラチド(エリゲン)、GEM-OS1、AC-162352、PRX-302、LFn-p24融合ワクチン(テラポア(Therapore))、EP-1043、小児S肺炎ワクチン、マラリアワクチン、髄膜炎菌グループBワクチン、新生児のグループB溶連菌ワクチン、炭疽菌ワクチン、HCVワクチン(gpE1+gpE2+MF-59)、中耳炎治療、HCVワクチン(コア抗原+イスコマトリックス(ISCOMATRIX))、hPTH(1-34)(経皮、ViaDerm)、768974、SYN-101、PGN-0052、アビスクミン、BIM-23190、結核ワクチン、マルチエピトープチロシナーゼペプチド、癌ワクチン、エンカスチム(enkastim)、APC-8024、GI-5005、ACC-001、TTS-CD3、血管標的化TNF(固形腫瘍)(デスモプレシン)(頬、徐放性)、オネルセプト及びTP-9201が挙げられる。
[00122]以下の基準を満たす、モノクローナル抗体(mAb)(ランダム組込みを用いて構築)を生産する400個のGS-CHOK1SV(商標)クローン細胞株(Lonza社、バーゼル、スイス)をスクリーニングした:高いqmAb量(>1.25pg/細胞・時間)、安定生産性(>70世代)及び適切な増殖(IVCC>1500×106細胞/mL・時間、μ~0.03時間-1)。大部分のこれらの細胞株は、2つの公表されたLonzaプロジェクトに由来するものであり(Porter et al.,Cell Culture and Tissue Engineering 26:1455-1464(2010)及びPovey et al.,J Biotechnol 184:84-93(2014))、GS-CHOK1SV(商標)クローン細胞株の構築プロセスはPorter et al.,2010に詳述されている。簡潔には、mAbをコードするPvuI直鎖化Lonzaグルタミン合成酵素(GS)発現ベクターを、標準的なエレクトロポレーション方法を使用して宿主細胞株(CHOK1SV(商標))に導入した。トランスフェクション混合物を80枚の96ウェルプレート全体に分配した。次の日、新鮮な培地をプレート内の細胞懸濁液に添加し、各ウェル中の最終的なMSX濃度が50μMとなるように、培地中のメチオニンスルホキシイミン(MSX)濃度を調整した。コロニーのバイオマスが増加したとき、細胞株を24ウェルの静置培養プレートで培養し、次に25cm2のT型培養フラスコにおいて静置培養した。懸濁培養は、コンフルエントとなった25cm2のT型培養フラスコから開始し、10Lのフェドバッチバイオリアクター培養で増殖させ、凍結保存した。
[00126]組込み部位は、全5つの細胞株における予測されるゲノム:ベクター境界を横切るPCR増幅により確認した。表9は、これらの組換え細胞株のβラクタマーゼ遺伝子のコピー数、生産性及び増殖データと共に、これらの組込み部位に関する知見を要約する。合計6つの部位(新規な座位1~6(NL1~6))を、5つの細胞株のPCRによって確認し、そのうち3つ(NL1、NL2及びNL4)ではPCRによって両方のゲノム:ベクター境界にあることが確認され、また残りの3つ(NL3、NL5及びNL6)では片方のみにあることが確認された。
[00127]NL1座位及びNL2座位を、SSIランディングパッドによる組込みに用いたところ、誘導体細胞株964E7及び952C8が、その他の3つの細胞株と同等のβ-ラクタマーゼ組込みコピー数を有していたが、高い比生産性(47~48pg/細胞・日)であったため、これらの領域が高い組換え遺伝子発現をサポートすることを示唆する。CHOK1SV(商標)誘導体宿主において生成した組換え細胞株からの座位の選択、及びGS選択マーカー(RMCEステップの説明についてステージ2を参照)の使用により、座位とGS発現系ベースの系との互換性を確保した。これらの座位は、増殖にとり重要なプロセスに悪影響を与えることなく、安定な組換え遺伝子の発現(qP:23~48pg/細胞.日)を支持することが示された(IVCC:2039~6015×106細胞/時・mL)。
[00128]次のRMCEに適するランディングパッドを、CHOK1SV GS-KO(商標)宿主細胞株に組み込んだ。
[00131]次に、Fer1L4、NL1及びNL2座位の、組換え遺伝子発現を支持しRMCEを完了させる能力を試験した。ターゲッティングベクターpMF25(図3A)及びリコンビナーゼベクターpMF4(図3B)を、6つのCHOK1SV GS-KO(商標)(図4:Fer1L4座位:7878及び8086(NL1):8096及び9113(NL2):9116及び9115)単一ランディングパッドSSI宿主にコトランスフェクトし、グルタミンフリーの培地においてインキュベートし、RMCEを完了させた細胞を選択した。これらのCHOK1SV GS-KO(商標)SSIプールは、RMCE前、及びグルタミンフリー培地において11日後に、フローサイトメトリーにより解析した(図4)。クローン中のランディングパッド(ランディングパッドA、図2)はHpt-eGFPレポーター(緑のチャネルにおいて検出)を含み、pMF25ターゲッティングベクターはDsRedレポーター(黄色のチャネルにおいて検出)を含むため、RMCEの成功により、+GFP及び-YFPから-GFP及びYFPへの蛍光変化が示される。
[00133]実施例2に記載される6つの多部位宿主をフローサイトメトリーにより解析し、組換え遺伝子発現を支持する座位の能力を確認した(図7)。Fer1L4座位で組み込んだランディングパッドはHpt-eGFP遺伝子を含み(図2:ランディングパッドA)、NL1座位で組み込んだランディングパッドはPAC-DsRed遺伝子を含む(図2:ランディングパッドB)。eGFP蛍光を緑のチャネルにおいて検出し、DsRedを黄色のチャネルにおいて検出した。CHOK1SV GS-KO(商標)宿主(宿主)を陰性コントロールとして用いた。クローン11434(Fer1L4座位にランディングパッド、ランディングパッドA:図2)をeGFP蛍光の陽性コントロールとして用いた。ランダム組込みにより生成したDsRed遺伝子を発現するCHOK1SV GS-KO(商標)プール(DsRed RIコントロール)を、Dsred蛍光の陽性コントロールとして用いた。予想通り、全6つの多部位CHOK1SV GS-KO(商標)SSIクローン(12151、12152、12606、12607、12608及び12609)は、11434及びDsRed RIコントロールと同等のeGFP及びDsRed蛍光強度であった(図7)。これは、両方の部位が外因性遺伝子の発現を支持できることを証明するものであった。次に、RMCEを完了する多部位宿主の能力を確認した。ターゲッティングベクターpCM9(図8A、E2クリムゾン発現カセットを含み、ランディングパッドA:Fer1L4を標的とする)及びpCM11(図8B、E2クリムゾン発現カセットを含み、ランディングパッドA:NL1を標的とする)を、多部位CHOK1SV GS-KO(商標)SSI宿主12151にトランスフェクトした。グルタミンフリー培地においてプールをインキュベートし、RMCEを完了した細胞を選択した。FlpEの無いコントロールは、RMCEプールによってリカバーしなかった。これらのCHOK1SV GS-KO(商標)SSIプールを、RMCE前及びグルタミンフリー培地において14日後に、フローサイトメトリーにより解析した(図8)。CHOK1SV GS-KO(商標)SSI宿主のランディングパッドA(ランディングパッドA、図2)がHpt-eGFPレポーターを含み、pCM9ターゲッティングベクターがE2クリムゾンレポーター(赤いチャネルにおいて検出)を含むため、+GFP及び-RFPから-GFP及び+RFPへの蛍光変化により、RMCEの成功が示された。CHOK1SV GS-KO(商標)SSI宿主のランディングパッドB(ランディングパッドB、図2)はPAC-DsRedレポーターを含むが、しかしながら、フローサイトメーターではDsRedシグナルは検出されなかった(図9)。pCM11ターゲッティングベクターはE2クリムゾンレポーターを含み、したがって、+GFP及び-RFPから+GFP及び+RFPへの変化(図9)により、ランディングパッドA(Hpt-eGFP遺伝子を含む)の喪失なくRMCEが成功したことが示された。
[00135]フェーズ1:いくつかの単一部位SSIシステムの限界は、必要な転写単位が単一コピーでは臨床製造のための適切な力価を発生させるのに不十分であるということである。したがって、本実施例ではオプションを評価し、多部位SSIを用いて、mAb遺伝子の組込みコピー数を増加させる。モノクローナル抗体リツキシマブを用いて、組込みコピー数の増加のための2つのアプローチを試験した。第1のアプローチにおいて、4つのmAb発現カセットを含むターゲッティングベクターを生成し(図10B:pCM38=2×HC及び2つのLC)、CHOK1SV GS-KO(商標)SSI宿主(ランディングパッドA、図2A)のランディングパッドAをターゲッティングした。このベクター及び2つのmAb発現カセット相当のベクター(図10A:pMF26)をGS-KO SSI宿主クローン12151(図10A及びB)に別々にトランスフェクトし(2回)、グルタミンフリー培地においてプールを選択した(詳細なトランスフェクション方法は実施例2を参照)。第2のアプローチにおいて、ネオマイシンホスホトランスフェラーゼ遺伝子(NEO)に加えて2つのmAb発現カセットを含み、ランディングパッドBを標的とする(ランディングパッドB、図2A)ターゲッティングベクター(図10C及びD:pAR5=1×HC及び1×LC)を生成した。mAb遺伝子を欠失するpAR5のバージョンもまた作製し、それをpCM22(図10C)と称した。次に、pMF26によりトランスフェクションされ、グルタミンフリー培地において選択されたCHOK1SV GS-KO(商標)SSIプールを、pAR5(図10D)又はpCM22(図10C)によりトランスフェクトし(2回)、pMF4(図3B)の存在下で24時間インキュベートし、次に400μg/mLジェネテシン(G418)において選択した(詳細なトランスフェクション方法は実施例2を参照)。グルタミンフリー培地の選択と整合して、培養したFlpEの無いコントロールは、G418の存在下では、RMCEプールによりリカバーされなかった。選択からの回収の後、8つのRMCEプールを継代培養し、次に8日間のバッチ培養に移行させた。Vicellセルカウンターを用いて4、6及び8日目に生細胞濃度を測定し、回収時の分泌されたmAbの濃度をプロテインAセンサーを用いたForteBio Octetにより測定した。リツキシマブの細胞特異的な生産率(回収時のqmAb)を算出した(図11を参照)。これらのデータは、両方のシナリオが、CHOK1SV GS-KO(商標)SSI宿主からの細胞特異的なmAb生産率を増加させる現実的なオプションであることを立証するものであった。
実施例5:CHOK1SVとHEK293細胞株との間の座位の転移
[00136]HEK293 SSI宿主を生成するため、University of California Santa Cruz (UCSC)ヒトゲノムデータベースのスタンドアロンコピー(バージョン:2006年3月(NCBI36/hg18))を使用し、CHOK1SV由来のベクター組込み部位、及びランディングパッド位置を、ヒトゲノムに対してBLAT検索した。CHOK1SV配列の少なくとも25塩基対において、95%(以上)の配列類似性が同定された。類似の領域を、IGVビューア(Broad institute version 2.4)で視覚化した。社内のCrispr-Cas9デザインツールを使用して、Crispr-Cas9 gRNAをデザインした。CHOK1SV及びHEK293の座位を表1にまとめる。
Claims (25)
- 少なくとも2つの別個の組換え標的部位(RTS)を含む哺乳動物細胞であって、前記RTSのうちの2つが、チャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間、又はチャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において染色体に組み込まれている哺乳動物細胞。
- 2つの別個のRTSを含む、請求項1に記載の細胞。
- 前記2つの別個のRTSが、NL1座位又はNL2座位内において染色体に組み込まれている、請求項2に記載の細胞。
- 4つの別個のRTSを含む、請求項1に記載の細胞。
- 前記4つの別個のRTSが、同じ座位において染色体に組み込まれている、請求項4に記載の細胞。
- 6つの別個のRTSを含む、請求項1に記載の細胞。
- 少なくとも4つの別個のRTSが、同じ座位において染色体に組み込まれている、請求項6に記載の細胞。
- 少なくとも2つの別個のRTSが、別々の座位において染色体に組み込まれている、請求項4又は6に記載の細胞。
- 前記別々の座位がFer1L4座位である、請求項8に記載の細胞。
- 前記RTSの少なくとも1つが、frt部位、lox部位、rox部位又はatt部位である、請求項1~9のいずれか一項に記載の細胞。
- 前記RTSの少なくとも1つが、配列番号1~30からなる群から選択される、請求項1~10のいずれか一項に記載の細胞。
- マウス細胞、ヒト細胞、チャイニーズハムスター卵巣(CHO)細胞、CHO-K1細胞、CHO-DXB11細胞、CHO-DG44細胞、すべてのバリアントを含むCHOK1SV(商標)細胞、すべてのバリアントを含むCHOK1SV GS-KO(商標)(グルタミン合成酵素ノックアウト)細胞、HEK細胞、付着適応及び懸濁適応バリアントを含むHEK293細胞、ヒーラ細胞又はHT1080細胞である、請求項1~11のいずれか一項に記載の細胞。
- 第1の目的遺伝子をさらに含み、前記第1の目的遺伝子が染色体に組み込まれている、請求項1~12のいずれか一項に記載の細胞。
- 前記第1の目的遺伝子が、レポーター遺伝子、選択遺伝子、治療目的遺伝子、補助的遺伝子又はそれらの組合せを含む、請求項13に記載の細胞。
- 前記治療目的遺伝子が、Fc融合タンパク質、酵素、膜受容体又はモノクローナル抗体からなる群から選択される発現困難タンパク質をコードする遺伝子を含む、請求項14に記載の細胞。
- 前記第1の目的遺伝子が、2つの前記RTSの間に位置する、請求項13~15のいずれか一項に記載の細胞。
- 第2の目的遺伝子をさらに含み、前記第2の目的遺伝子が染色体に組み込まれている、請求項1~16のいずれか一項に記載の細胞。
- 前記第1の目的遺伝子がNL1座位内に位置し、前記第2の目的遺伝子がNL2座位内に位置する、請求項17に記載の細胞。
- 第3の目的遺伝子をさらに含み、前記第3の目的遺伝子が染色体に組み込まれている、請求項1~18のいずれか一項に記載の細胞。
- a.前記第1の目的遺伝子、前記第2の目的遺伝子及び前記第3の目的遺伝子のうちの少なくとも1つが、NL1座位内にあり、
b.前記第1の目的遺伝子、前記第2の目的遺伝子及び前記第3の目的遺伝子のうちの少なくとも1つが、NL2座位内にある、請求項19に記載の細胞。 - 少なくとも4つの別個の組換え標的部位(RTS)を含む哺乳動物細胞であって、
a.チャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間、又はチャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において、染色体に組み込まれている少なくとも2つの別個のRTSと、
b.(a)の少なくとも2つのRTSの間に組み込まれている第1の目的遺伝子であって、レポーター遺伝子、発現困難タンパク質をコードする遺伝子、補助的遺伝子又はそれらの組合せを含む、前記第1の目的遺伝子と、
c.(a)の座位とは別の第2の染色体座位内に組み込まれている第2の目的遺伝子であって、レポーター遺伝子、発現困難タンパク質をコードする遺伝子、補助的遺伝子又はそれらの組合せを含む、前記第2の目的遺伝子と
を含む、哺乳動物細胞。 - 少なくとも4つの別個の組換え標的部位(RTS)を含む哺乳動物細胞であって、
a.Fer1L4座位内において染色体に組み込まれている少なくとも2つの別個のRTSと、
b.チャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間、又はチャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において染色体に組み込まれている少なくとも2つの別個のRTSと、
c.Fer1L4座位内において染色体に組み込まれている第1の目的遺伝子であって、レポーター遺伝子、発現困難タンパク質をコードする遺伝子、補助的遺伝子又はそれらの組合せを含む、前記第1の目的遺伝子と、
d.(b)のNL1座位又はNL2座位内において染色体に組み込まれている第2の目的遺伝子であって、レポーター遺伝子、発現困難タンパク質をコードする遺伝子、補助的遺伝子又はそれらの組合せを含む、前記第2の目的遺伝子と
を含む、哺乳動物細胞。 - 少なくとも6つの別個の組換え標的部位(RTS)を含む哺乳動物細胞であって、
a.Fer1L4座位内において染色体に組み込まれている少なくとも2つの別個のRTS及び第1の目的遺伝子と、
b.チャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間において染色体に組み込まれている少なくとも2つの別個のRTS及び第2の目的遺伝子と、
c.チャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において染色体に組み込まれている少なくとも2つのRTS及び第3の目的遺伝子と
を含む、哺乳動物細胞。 - 組換えタンパク質プロデューサー細胞を生産する方法であって、
a.少なくとも4つの別個の組換え標的部位(RTS)及び部位特異的リコンビナーゼをコードする遺伝子を含み、
少なくとも2つの別個のRTSがチャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間において染色体に組み込まれ、少なくとも2つの別個のRTSがチャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において染色体に組み込まれているか、又は少なくとも2つの別個のRTSがFer1L4座位内において染色体に組み込まれ、少なくとも2つの別個のRTSがNL1座位のCol5a2偽遺伝子とCol5a2遺伝子との間又はNL2座位のNaa15イントロン内において染色体に組み込まれている細胞を用意するステップと、
b.(a)の前記細胞に、第1の目的遺伝子をコードする交換可能なカセットを含む第1のベクターと、第2の目的遺伝子をコードする交換可能なカセットを含む第2のベクターとをトランスフェクトするステップと、
c.NL1座位内に第1の交換可能なカセットを、NL2座位内に第2の交換可能なカセットを組み込むか、又はFer1L4座位内に第1の交換可能なカセットを、NL1座位又はNL2座位内に第2の交換可能なカセットを組み込むステップと、
d.染色体に組み込まれた前記第1の交換可能なカセット及び前記第2の交換可能なカセットを含む組換えタンパク質プロデューサー細胞を選択するステップと
を含む方法。 - 組換えタンパク質プロデューサー細胞を生産する方法であって、
a.少なくとも少なくとも6つの別個の組換え標的部位(RTS)及び部位特異的リコンビナーゼをコードする遺伝子を含み、少なくとも2つの別個のRTSがFer1L4座位内において染色体に組み込まれ、少なくとも2つの別個のRTSがチャイニーズハムスター(Cricetulus griseus)のNW_003615899.1に対応する新たな座位1(NL1)内のCol5a2偽遺伝子とCol5a2遺伝子との間において染色体に組み込まれ、少なくとも2つの別個のRTSがチャイニーズハムスターのNW_003613834.1に対応する新たな座位2(NL2)のNaa15イントロン内において染色体に組み込まれている細胞を用意するステップと、
b.(a)の前記細胞に、第1の目的遺伝子をコードする交換可能なカセットを含む第1のベクターと、第2の目的遺伝子をコードする交換可能なカセットを含む第2のベクターと、第3の目的遺伝子をコードする交換可能なカセットを含む第3のベクターとをトランスフェクトするステップと、
c.Fer1L4座位内に第1の交換可能なカセットを、NL1座位内に第2の交換可能なカセットを、NL2座位内に第3の交換可能なカセットを組み込むステップと、
d.染色体に組み込まれた前記第1の交換可能なカセット、前記第2の交換可能なカセット及び前記第3の交換可能なカセットを含む組換えタンパク質プロデューサー細胞を選択するステップと
を含む方法。
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