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在人类细胞中使用CRISPR-Cas12a和环状RNA进行碱基编辑。

Prime editing using CRISPR-Cas12a and circular RNAs in human cells.

作者信息

Liang Ronghong, He Zixin, Zhao Kevin Tianmeng, Zhu Haocheng, Hu Jiacheng, Liu Guanwen, Gao Qiang, Liu Meiyan, Zhang Rui, Qiu Jin-Long, Gao Caixia

机构信息

New Cornerstone Science Laboratory, Center for Genome Editing, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China.

College of Advanced Agricultural Sciences, University of Chinese Academy of Sciences, Beijing, China.

出版信息

Nat Biotechnol. 2024 Dec;42(12):1867-1875. doi: 10.1038/s41587-023-02095-x. Epub 2024 Jan 10.

Abstract

Genome editing with prime editors based on CRISPR-Cas9 is limited by the large size of the system and the requirement for a G/C-rich protospacer-adjacent motif (PAM) sequence. Here, we use the smaller Cas12a protein to develop four circular RNA-mediated prime editor (CPE) systems: nickase-dependent CPE (niCPE), nuclease-dependent CPE (nuCPE), split nickase-dependent CPE (sniCPE) and split nuclease-dependent CPE (snuCPE). CPE systems preferentially recognize T-rich genomic regions and possess a potential multiplexing capacity in comparison to corresponding Cas9-based systems. The efficiencies of the nuclease-based systems are up to 10.42%, whereas niCPE and sniCPE reach editing frequencies of up to 24.89% and 40.75% without positive selection in human cells, respectively. A derivative system, called one-sniCPE, combines all three RNA editing components under a single promoter. By arraying CRISPR RNAs for different targets in one circular RNA, we also demonstrate low-efficiency editing of up to four genes simultaneously with the nickase prime editors niCPE and sniCPE.

摘要

基于CRISPR-Cas9的引导编辑器进行基因组编辑受到系统规模较大以及对富含G/C的原间隔相邻基序(PAM)序列的需求限制。在此,我们使用较小的Cas12a蛋白开发了四种环状RNA介导的引导编辑器(CPE)系统:切口酶依赖性CPE(niCPE)、核酸酶依赖性CPE(nuCPE)、分裂切口酶依赖性CPE(sniCPE)和分裂核酸酶依赖性CPE(snuCPE)。与相应的基于Cas9的系统相比,CPE系统优先识别富含T的基因组区域并具有潜在的多重编辑能力。基于核酸酶的系统效率高达10.42%,而在人类细胞中,niCPE和sniCPE在无阳性选择的情况下分别达到高达24.89%和40.75%的编辑频率。一种名为单sniCPE的衍生系统在单个启动子下组合了所有三种RNA编辑组件。通过在一个环状RNA中排列针对不同靶标的CRISPR RNA,我们还展示了使用切口酶引导编辑器niCPE和sniCPE同时对多达四个基因进行的低效率编辑。

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