适体
基因敲除
基因敲除
基因组编辑
生物
基因
基础(拓扑)
基因剔除小鼠
遗传学
分子生物学
清脆的
细胞生物学
计算生物学
数学
数学分析
作者
Immacolata Porreca,Robert Blassberg,Jennifer Harbottle,Anja van Brabant Smith,Olga Mielczarek,Anja van Brabant Smith,Anja van Brabant Smith,Anja van Brabant Smith,Deividas Pazeraitis,Julia Liz Touza,Margherita Francescatto,Anja van Brabant Smith,Tommaso Selmi,Anja van Brabant Smith,Žaklina Strezoska,Ben Taylor,Shengkan Jin,Anja van Brabant Smith,Anja van Brabant Smith,John Lambourne
标识
DOI:10.1016/j.ymthe.2024.06.033
摘要
Gene editing technologies hold promise for enabling the next generation of adoptive cellular therapies. In conventional gene editing platforms that rely on nuclease activity, such as clustered regularly interspaced short palindromic repeats CRISPR-associated protein 9 (CRISPR-Cas9), allow efficient introduction of genetic modifications; however, these modifications occur via the generation of DNA double-strand breaks (DSBs) and can lead to unwanted genomic alterations and genotoxicity. Here, we apply a novel modular RNA aptamer-mediated Pin-point base editing platform to simultaneously introduce multiple gene knockouts and site-specific integration of a transgene in human primary T cells. We demonstrate high editing efficiency and purity at all target sites and significantly reduced frequency of chromosomal translocations compared with the conventional CRISPR-Cas9 system. Site-specific knockin of a chimeric antigen receptor and multiplex gene knockout are achieved within a single intervention and without the requirement for additional sequence-targeting components. The ability to perform complex genome editing efficiently and precisely highlights the potential of the Pin-point platform for application in a range of advanced cell therapies.
科研通智能强力驱动
Strongly Powered by AbleSci AI