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内源性CRISPR辅助的微同源介导的末端连接实现了运动发酵单胞菌的快速基因组编辑。

Endogenous CRISPR-assisted microhomology-mediated end joining enables rapid genome editing in Zymomonas mobilis.

作者信息

Sui Xin, Wang Xiaojie, Liu Tao, Ye Qing, Wu Bo, Hu Guoquan, Yang Shihui, He Mingxiong, Peng Nan

机构信息

State Key Laboratory of Agricultural Microbiology, Hubei Hongshan Laboratory, College of Life Science and Technology, Huazhong Agricultural University, Wuhan, 430070, Hubei, People's Republic of China.

Key Laboratory of Development and Application of Rural Renewable Energy (Ministry of Agriculture), Biomass Energy Technology Research Centre, Biogas Institute of Ministry of Agriculture, Chengdu, 610041, Sichuan, People's Republic of China.

出版信息

Biotechnol Biofuels. 2021 Oct 24;14(1):208. doi: 10.1186/s13068-021-02056-z.

Abstract

BACKGROUND

Zymomonas mobilis is a natural ethanologen with many desirable characteristics, making it an ideal platform for future biorefineries. Recently, an endogenous CRISPR-based genome editing tool has been developed for this species. However, a simple and high-efficient genome editing method is still required.

RESULTS

We developed a novel gene deletion tool based on the endogenous subtype I-F CRISPR-Cas system and the microhomology-mediated end joining (MMEJ) pathway. This tool only requires a self-interference plasmid carrying the mini-CRISPR (Repeat-Spacer-Repeat) expression cassette, where the spacer matches the target DNA. Transformation of the self-interference plasmid leads to target DNA damage and subsequently triggers the endogenous MMEJ pathway to repair the damaged DNA, leaving deletions normally smaller than 500 bp. Importantly, the MMEJ repair efficiency was increased by introducing mutations at the second repeat of the mini-CRISPR cassette expressing the guide RNA. Several genes have been successfully deleted via this method, and the phenotype of a σ deletion mutant generated in this study was characterized. Moreover, large fragment deletions were obtained by transformation of the self-interference plasmids expressing two guide RNAs in tandem.

CONCLUSIONS

Here, we report the establishment of an efficient gene deletion tool based on the endogenous subtype I-F CRISPR-Cas system and the MMEJ pathway in Zymomonas mobilis. We achieved single gene deletion and large-fragment knockout using this tool. In addition, we further promoted the editing efficiency by modifying the guide RNA expression cassette and selecting lower GC% target sites. Our study has provided an effective method for genetic manipulation in Z. mobilis.

摘要

背景

运动发酵单胞菌是一种天然产乙醇菌,具有许多理想特性,使其成为未来生物精炼厂的理想平台。最近,已为该物种开发了一种基于内源性CRISPR的基因组编辑工具。然而,仍需要一种简单高效的基因组编辑方法。

结果

我们基于内源性I-F型CRISPR-Cas系统和微同源性介导的末端连接(MMEJ)途径开发了一种新型基因缺失工具。该工具仅需要一个携带微型CRISPR(重复序列-间隔序列-重复序列)表达盒的自我干扰质粒,其中间隔序列与目标DNA匹配。自我干扰质粒的转化导致目标DNA损伤,随后触发内源性MMEJ途径修复受损DNA,通常留下小于500 bp的缺失。重要的是,通过在表达引导RNA的微型CRISPR盒的第二个重复序列处引入突变,提高了MMEJ修复效率。通过这种方法已成功删除了几个基因,并对本研究中产生的σ缺失突变体的表型进行了表征。此外,通过串联转化表达两个引导RNA的自我干扰质粒获得了大片段缺失。

结论

在此,我们报告了在运动发酵单胞菌中基于内源性I-F型CRISPR-Cas系统和MMEJ途径建立了一种高效基因缺失工具。我们使用该工具实现了单基因缺失和大片段敲除。此外,我们通过修饰引导RNA表达盒和选择较低GC%的目标位点进一步提高了编辑效率。我们的研究为运动发酵单胞菌的基因操作提供了一种有效方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0624/8543907/cbd9c4affcf9/13068_2021_2056_Fig1_HTML.jpg

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