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Precise large-fragment deletions in mammalian cells and mice generated by dCas9-controlled CRISPR/Cas3.


ABSTRACT: Currently, the Cas9 and Cas12a systems are widely used for genome editing, but their ability to precisely generate large chromosome fragment deletions is limited. Type I-E CRISPR mediates broad and unidirectional DNA degradation, but controlling the size of Cas3-mediated DNA deletions has proven elusive thus far. Here, we demonstrate that the endonuclease deactivation of Cas9 (dCas9) can precisely control Cas3-mediated large-fragment deletions in mammalian cells. In addition, we report the elimination of the Y chromosome and precise retention of the Sry gene in mice using CRISPR/Cas3 and dCas9-controlled CRISPR/Cas3, respectively. In conclusion, dCas9-controlled CRISPR/Cas3-mediated precise large-fragment deletion provides an approach for establishing animal models by chromosome elimination. This method also holds promise as a potential therapeutic strategy for treating fragment mutations or human aneuploidy diseases that involve additional chromosomes.

SUBMITTER: Li J 

PROVIDER: S-EPMC10942115 | biostudies-literature | 2024 Mar

REPOSITORIES: biostudies-literature

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Precise large-fragment deletions in mammalian cells and mice generated by dCas9-controlled CRISPR/Cas3.

Li Jinze J   Zhao Ding D   Zhang Tao T   Xiong Haoyang H   Hu Mingyang M   Liu Hongmei H   Zhao Feiyu F   Sun Xiaodi X   Fan Peng P   Qian Yuqiang Y   Wang Di D   Lai Liangxue L   Sui Tingting T   Li Zhanjun Z  

Science advances 20240315 11


Currently, the Cas9 and Cas12a systems are widely used for genome editing, but their ability to precisely generate large chromosome fragment deletions is limited. Type I-E CRISPR mediates broad and unidirectional DNA degradation, but controlling the size of Cas3-mediated DNA deletions has proven elusive thus far. Here, we demonstrate that the endonuclease deactivation of Cas9 (dCas9) can precisely control Cas3-mediated large-fragment deletions in mammalian cells. In addition, we report the elimi  ...[more]

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