Insight into the molecular mechanism of the transposon-encoded type I-F CRISPR-Cas system.

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Amnah Alalmaie, Saousen Diaf, Raed Khashan
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Abstract

CRISPR-Cas9 is a popular gene-editing tool that allows researchers to introduce double-strand breaks to edit parts of the genome. CRISPR-Cas9 system is used more than other gene-editing tools because it is simple and easy to customize. However, Cas9 may produce unintended double-strand breaks in DNA, leading to off-target effects. There have been many improvements in the CRISPR-Cas system to control the off-target effect and improve the efficiency. The presence of a nuclease-deficient CRISPR-Cas system in several bacterial Tn7-like transposons inspires researchers to repurpose to direct the insertion of Tn7-like transposons instead of cleaving the target DNA, which will eventually limit the risk of off-target effects. Two transposon-encoded CRISPR-Cas systems have been experimentally confirmed. The first system, found in Tn7 like-transposon (Tn6677), is associated with the variant type I-F CRISPR-Cas system. The second one, found in Tn7 like-transposon (Tn5053), is related to the variant type V-K CRISPR-Cas system. This review describes the molecular and structural mechanisms of DNA targeting by the transposon-encoded type I-F CRISPR-Cas system, from assembly around the CRISPR-RNA (crRNA) to the initiation of transposition.

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转座子编码I-F型CRISPR-Cas系统的分子机制。
CRISPR-Cas9是一种流行的基因编辑工具,它允许研究人员引入双链断裂来编辑部分基因组。CRISPR-Cas9系统比其他基因编辑工具使用得更多,因为它简单且易于定制。然而,Cas9可能会在DNA中产生意想不到的双链断裂,导致脱靶效应。为了控制脱靶效应,提高效率,CRISPR-Cas系统进行了许多改进。在几种细菌tn7样转座子中存在核酸酶缺陷CRISPR-Cas系统,这激发了研究人员重新定位,引导tn7样转座子的插入,而不是切割目标DNA,这将最终限制脱靶效应的风险。两个转座子编码的CRISPR-Cas系统已经被实验证实。第一个系统在Tn7样转座子(Tn6677)中发现,与I-F型CRISPR-Cas系统相关。第二个是在Tn7样转座子(Tn5053)中发现的,与变异型V-K CRISPR-Cas系统有关。本文综述了转座子编码的I-F型CRISPR-Cas系统靶向DNA的分子和结构机制,从围绕CRISPR-RNA (crRNA)的组装到转座的启动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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