Wang Chenxin, Fang Sen, Chen Yangcan, Tang Na, Jiao Guanyi, Hu Yanping, Li Jing, Shan Qingtong, Wang Xin, Feng Guihai, Zhou Qi, Li Wei
State Key Laboratory of Stem Cell and Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, Beijing, China.
Institute for Stem Cell and Regenerative Medicine, Chinese Academy of Sciences, Beijing, China.
Cell Discov. 2023 Jul 4;9(1):69. doi: 10.1038/s41421-023-00552-0.
Due to the difficulties in precisely manipulating DNA repair pathways, high-fidelity targeted integration of large transgenes triggered by double-strand breaks is inherently inefficient. Here, we exploit prime editors to devise a robust knock-in (KI) strategy named primed micro-homologues-assisted integration (PAINT), which utilizes reverse-transcribed single-stranded micro-homologues to boost targeted KIs in different types of cells. The improved version of PAINT, designated PAINT 3.0, maximizes editing efficiency and minimizes off-target integration, especially in dealing with scarless in-frame KIs. Using PAINT 3.0, we target a reporter transgene into housekeeping genes with editing efficiencies up to 80%, more than 10-fold higher than the traditional homology-directed repair method. Moreover, the use of PAINT 3.0 to insert a 2.5-kb transgene achieves up to 85% KI frequency at several therapeutically relevant genomic loci, suggesting its potential for clinical applications. Finally, PAINT 3.0 enables high-efficiency non-viral genome targeting in primary T cells and produces functional CAR-T cells with specific tumor-killing ability. Thus, we establish that the PAINT method is a powerful gene editing tool for large transgene integrations and may open new avenues for cell and gene therapies and genome writing technologies.
由于精确操纵DNA修复途径存在困难,由双链断裂引发的大转基因的高保真靶向整合本质上效率低下。在此,我们利用碱基编辑器设计了一种强大的敲入(KI)策略,称为碱基编辑微同源物辅助整合(PAINT),该策略利用逆转录的单链微同源物来提高不同类型细胞中的靶向KI效率。PAINT的改进版本PAINT 3.0可最大限度地提高编辑效率并最小化脱靶整合,尤其是在处理无痕框内KI时。使用PAINT 3.0,我们将报告基因转基因靶向管家基因,编辑效率高达80%,比传统的同源定向修复方法高出10倍以上。此外,使用PAINT 3.0插入一个2.5kb的转基因,在几个与治疗相关的基因组位点上实现了高达85%的KI频率,表明其在临床应用中的潜力。最后,PAINT 3.0能够在原代T细胞中实现高效的非病毒基因组靶向,并产生具有特定肿瘤杀伤能力的功能性CAR-T细胞。因此,我们证实PAINT方法是一种用于大转基因整合的强大基因编辑工具,可能为细胞和基因治疗以及基因组编写技术开辟新途径。