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选择:通过整合CRISPR-Cas和DNA损伤反应实现跨物种应用的高精度基因组编辑策略。

SELECT: high-precision genome editing strategy via integration of CRISPR-Cas and DNA damage response for cross-species applications.

作者信息

Liu Xiaohang, Tan Huiping, Wang Junyan, Cao Yaming, Li Pengpai, Fan Xiangrui, Wang Qingqing, Zhang Haonan, Zhang Jingjing, Yang Tianxiang, Zhao Guofu, Zhang Xiaohui, Duan Xiaoyan, Zi Lihan, Liu Lin, Ma Liming, Chen Zhiying, Liang Liya, Liu Rongming

机构信息

MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, Dalian, 116024, China.

Central Hospital of Dalian University of Technology, Dalian, 116024, China.

出版信息

Nucleic Acids Res. 2025 Jun 20;53(12). doi: 10.1093/nar/gkaf595.

Abstract

CRISPR-based methods enable genome modifications for diverse applications but often face challenges, such as inconsistent efficiencies, reduced performance in iterative modifications, and difficulties generating high-quality datasets for high-throughput genome engineering. Here, we present SELECT (SOS Enhanced programmabLE CRISPR-Cas ediTing), a novel strategy integrating the CRISPR-Cas system with the DNA damage response. By employing designed and optimized double-strand break induced promoters that are activated upon genome editing, SELECT enables a counter-selection process to eliminate unedited cells, ensuring high-fidelity editing. This approach achieves up to 100% efficiency for point mutations, iterative knockouts, and insertions. In high-throughput library editing, SELECT achieved up to 94.2% efficiency and preserved higher library diversity compared with conventional methods. Application of SELECT in flaviolin biosynthesis resulted in a 3.97-fold increase in production. Furthermore, integration with machine learning tools allowed rapid mapping of genotype-phenotype relationships. SELECT provides a versatile platform for precision genome engineering in Escherichia coli and Saccharomyces cerevisiae.

摘要

基于CRISPR的方法能够实现多种应用的基因组修饰,但常常面临挑战,比如效率不一致、迭代修饰时性能下降,以及为高通量基因组工程生成高质量数据集存在困难。在此,我们展示了SELECT(SOS增强可编程CRISPR-Cas编辑),这是一种将CRISPR-Cas系统与DNA损伤反应相结合的新策略。通过使用经设计和优化的双链断裂诱导型启动子,该启动子在基因组编辑时被激活,SELECT实现了一个反选过程以消除未编辑的细胞,确保高保真编辑。这种方法在点突变、迭代敲除和插入方面的效率高达100%。在高通量文库编辑中,与传统方法相比,SELECT的效率高达94.2%,并保留了更高的文库多样性。SELECT在黄酮菌素生物合成中的应用使产量提高了3.97倍。此外,与机器学习工具相结合能够快速绘制基因型-表型关系图。SELECT为大肠杆菌和酿酒酵母中的精确基因组工程提供了一个通用平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a088/12199148/4952351126ad/gkaf595figgra1.jpg

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