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CRISPR/Cas9 和农杆菌毒性蛋白协同作用通过同源定向修复提高植物中精确基因组编辑的效率。

CRISPR/Cas9 and Agrobacterium tumefaciens virulence proteins synergistically increase efficiency of precise genome editing via homology directed repair in plants.

机构信息

State Key Laboratory of Plant Genomics, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.

出版信息

J Exp Bot. 2023 Jun 27;74(12):3518-3530. doi: 10.1093/jxb/erad096.

Abstract

CRISPR/Cas9 genome editing and Agrobacterium tumefaciens-mediated genetic transformation are widely-used plant biotechnology tools derived from bacterial immunity-related systems, each involving DNA modification. The Cas9 endonuclease introduces DNA double-strand breaks (DSBs), and the A. tumefaciens T-DNA is released by the VirD2 endonuclease assisted by VirDl and attached by VirE2, transferred to the plant nucleus and integrated into the genome. Here, we explored the potential for synergy between the two systems and found that Cas9 and three virulence (Vir) proteins achieve precise genome editing via the homology directed repair (HDR) pathway in tobacco and rice plants. Compared with Cas9T (Cas9, VirD1, VirE2) and CvD (Cas9-VirD2) systems, the HDR frequencies of a foreign GFPm gene in the CvDT system (Cas9-VirD2, VirD1, VirE2) increased 52-fold and 22-fold, respectively. Further optimization of the CvDT process with a donor linker (CvDTL) achieved a remarkable increase in the efficiency of HDR-mediated genome editing. Additionally, the HDR efficiency of the three rice endogenous genes ACETOLACTATE SYNTHASE (ALS), PHYTOENE DESATURASE (PDS), and NITROGEN TRANSPORTER 1.1 B (NRT1.1B) increased 24-, 32- and 16-fold, respectively, in the CvDTL system, compared with corresponding Cas9TL (Cas9T process with a donor linker). Our results suggest that collaboration between CRISPR/Cas9 and Agrobacterium-mediated genetic transformation can make great progress towards highly efficient and precise genome editing via the HDR pathway.

摘要

CRISPR/Cas9 基因组编辑和农杆菌介导的遗传转化是广泛应用于植物生物技术的工具,源自细菌的免疫相关系统,均涉及 DNA 修饰。Cas9 内切酶引入 DNA 双链断裂(DSB),农杆菌 T-DNA 由 VirD2 内切酶在 VirDl 和 VirE2 的辅助下释放,转移到植物细胞核并整合到基因组中。在这里,我们探索了这两个系统之间协同作用的潜力,发现 Cas9 和三种毒力(Vir)蛋白通过同源定向修复(HDR)途径在烟草和水稻植物中实现精确的基因组编辑。与 Cas9T(Cas9、VirD1、VirE2)和 CvD(Cas9-VirD2)系统相比,CvDT 系统(Cas9-VirD2、VirD1、VirE2)中外源 GFPm 基因的 HDR 频率分别增加了 52 倍和 22 倍。进一步优化 CvDT 过程与供体接头(CvDTL)实现了 HDR 介导的基因组编辑效率的显著提高。此外,三个水稻内源基因 ACETOLACTATE SYNTHASE(ALS)、PHYTOENE DESATURASE(PDS)和 NITROGEN TRANSPORTER 1.1 B(NRT1.1B)在 CvDTL 系统中的 HDR 效率分别比相应的 Cas9TL(带有供体接头的 Cas9T 过程)提高了 24 倍、32 倍和 16 倍。我们的结果表明,CRISPR/Cas9 和农杆菌介导的遗传转化之间的合作可以通过 HDR 途径在高效和精确的基因组编辑方面取得重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69b0/10797490/cecb7dd3b1e8/erad096_fig1.jpg

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