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利用环状单链DNA介导的基因组整合进行高效非病毒免疫细胞工程。

Efficient non-viral immune cell engineering using circular single-stranded DNA-mediated genomic integration.

作者信息

Xie Keqiang, Starzyk Jakob, Majumdar Ishita, Wang Jiao, Rincones Katerina, Tran Thao, Lee Danna, Niemi Sarah, Famiglietti John, Suter Bernhard, Shan Richard, Wu Hao

机构信息

Full Circles Therapeutics, Cambridge, MA, USA.

Stellate DNA, Cambridge, MA, USA.

出版信息

Nat Biotechnol. 2024 Dec 11. doi: 10.1038/s41587-024-02504-9.

Abstract

The use of adeno-associated viruses (AAVs) as donors for homology-directed repair (HDR)-mediated genome engineering is limited by safety issues, manufacturing constraints and restricted packaging limits. Non-viral targeted genetic knock-ins rely primarily on double-stranded DNA (dsDNA) and linear single-stranded DNA (lssDNA) donors. dsDNA is known to have low efficiency and high cytotoxicity, while lssDNA is challenging for scaled manufacture. In this study, we developed a non-viral genome writing catalyst (GATALYST) system that allows production of circular single-stranded DNAs (cssDNAs) up to approximately 20 kilobases as donor templates for highly efficient precision transgene integration. cssDNA donors enable knock-in efficiency of up to 70% in induced pluripotent stem cells (iPSCs) and improved efficiency in multiple clinically relevant primary immune cell types and at multiple genomic loci implicated for clinical applications with various nuclease editor systems. The high precision and efficiency in chimeric antigen receptor (CAR)-T and natural killer (NK) cells, improved safety, payload flexibility and scalable manufacturability of cssDNA shows potential for future applications of genome engineering.

摘要

将腺相关病毒(AAV)用作同源定向修复(HDR)介导的基因组工程的供体,受到安全性问题、生产限制和包装限制的制约。非病毒靶向基因敲入主要依赖双链DNA(dsDNA)和线性单链DNA(lssDNA)供体。已知dsDNA效率低且细胞毒性高,而lssDNA的规模化生产具有挑战性。在本研究中,我们开发了一种非病毒基因组书写催化剂(GATALYST)系统,该系统能够生产长达约20千碱基的环状单链DNA(cssDNA),作为供体模板用于高效精确的转基因整合。cssDNA供体在诱导多能干细胞(iPSC)中的敲入效率高达70%,并提高了多种临床相关原代免疫细胞类型以及多种与临床应用相关的基因组位点在各种核酸酶编辑系统中的效率。cssDNA在嵌合抗原受体(CAR)-T细胞和自然杀伤(NK)细胞中的高精度和高效率、更高的安全性、载荷灵活性以及可扩展的可制造性显示了其在基因组工程未来应用中的潜力。

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