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[CRISPR-Cas系统:超越基因组编辑]

[The CRISPR-Cas system: beyond genome editing].

作者信息

Croteau Félix R, Rousseau Geneviève M, Moineau Sylvain

机构信息

Département de biochimie, de microbiologie, et de bio-informatique, faculté des sciences et de génie, groupe de recherche en écologie buccale, faculté de médecine dentaire, Université Laval, Québec, QC, G1V 0A6, Canada - Félix d'Hérelle reference center for bacterial viruses, faculté de médecine dentaire, Université Laval, 1045 avenue de la Médecine, Québec, QC, G1V 0A6, Canada.

Département de biochimie, de microbiologie, et de bio-informatique, faculté des sciences et de génie, groupe de recherche en écologie buccale, faculté de médecine dentaire, Université Laval, Québec, QC, G1V 0A6, Canada.

出版信息

Med Sci (Paris). 2018 Oct;34(10):813-819. doi: 10.1051/medsci/2018215. Epub 2018 Nov 19.

Abstract

CRISPR-Cas is an adaptive immune system used by many microbes to defend against nucleic acids invasion such as viral genomes. The microbial system uses its CRISPR locus to store genetic information that will generate short CRISPR RNAs. The latter with endonucleases (Cas) prevent future viral infections. Parts of this system were exploited to develop a powerful genome editing tool that was adapted for a variety of organisms. The ability of the CRISPR-Cas9 technology to effectively and precisely cut a targeted genomic DNA region has the potential to may be one day cure genetic diseases. The malleability of this editing tool also offers a wide range of possibilities from modulations of gene expression to epigenetic modifications. The natural CRISPR loci found in bacteria can be used to differentiate microbial strains or to study the interactions between bacteria and its habitat. Addressing CRISPR-Cas fundamentals in microbes and its popular use in eukaryotes, this review presents an update on a system that has revolutionized biological sciences.

摘要

CRISPR-Cas是许多微生物用来抵御诸如病毒基因组等核酸入侵的一种适应性免疫系统。该微生物系统利用其CRISPR位点来存储将产生短CRISPR RNA的遗传信息。后者与核酸内切酶(Cas)一起防止未来的病毒感染。该系统的部分功能被用于开发一种强大的基因组编辑工具,该工具适用于多种生物。CRISPR-Cas9技术有效且精确地切割靶向基因组DNA区域的能力有可能在某一天治愈遗传疾病。这种编辑工具的可塑性还提供了从基因表达调控到表观遗传修饰等广泛的可能性。细菌中发现的天然CRISPR位点可用于区分微生物菌株或研究细菌与其栖息地之间的相互作用。本文综述了微生物中CRISPR-Cas的基本原理及其在真核生物中的广泛应用,介绍了这个彻底改变了生物科学的系统的最新进展。

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