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使用配对的Cas9-NG切口酶和截短的sgRNA进行单核苷酸微生物基因组编辑。

Use of paired Cas9-NG nickase and truncated sgRNAs for single-nucleotide microbial genome editing.

作者信息

Jeong Song Hee, Lee Ho Joung, Lee Sang Jun

机构信息

Department of Systems Biotechnology, Institute of Microbiomics, Chung-Ang University, Anseong, Republic of Korea.

出版信息

Front Genome Ed. 2024 Sep 26;6:1471720. doi: 10.3389/fgeed.2024.1471720. eCollection 2024.

Abstract

The paired nickases approach, which utilizes clustered regularly interspaced short palindromic repeats (CRISPR)-CRISPR-associated proteins (Cas) nickase and dual guide RNA, has the advantage of reducing off-target effects by being able to double the target sequence. In this study, our research utilized the Cas9-NG nickase variant to minimize PAM sequence constraints, enabling the generation of paired nicks at desired genomic loci. We performed a systematic investigation into the formation sites for double nicks and the design of donor DNA within a bacterial model system. Although we successfully identified the conditions necessary for the effective formation of double nicks , achieving single-nucleotide level editing directly at the target sites in the genome proved challenging. Nonetheless, our experiments revealed that efficient editing at the single-nucleotide level was achievable on target DNA sequences that are hybridized with 5'-end-truncated dual single-guide RNAs (sgRNAs). Our findings contribute to a deeper understanding of the paired nickases approach, offering a single-mismatch intolerance design strategy for accurate nucleotide editing. This strategy not only enhances the precision of genome editing but also marks a significant step forward in the development of nickase-derived genome editing technologies.

摘要

双切口酶方法利用成簇规律间隔短回文重复序列(CRISPR)-CRISPR相关蛋白(Cas)切口酶和双向导RNA,具有通过使靶序列加倍来减少脱靶效应的优势。在本研究中,我们的研究利用Cas9-NG切口酶变体来最小化PAM序列限制,从而能够在所需的基因组位点产生双切口。我们在细菌模型系统中对双切口的形成位点和供体DNA的设计进行了系统研究。虽然我们成功地确定了有效形成双切口所需的条件,但在基因组中的靶位点直接实现单核苷酸水平的编辑被证明具有挑战性。尽管如此,我们的实验表明,在与5'端截短的双单向导RNA(sgRNA)杂交的靶DNA序列上,单核苷酸水平的高效编辑是可以实现的。我们的研究结果有助于更深入地理解双切口酶方法,为精确的核苷酸编辑提供了一种单错配不耐受设计策略。这种策略不仅提高了基因组编辑的精度,也标志着切口酶衍生的基因组编辑技术发展向前迈出了重要一步。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0779/11464485/88b31a53c9ec/fgeed-06-1471720-g001.jpg

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