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在 DNA 切口处启动同源重组。

Initiation of homologous recombination at DNA nicks.

机构信息

Department of Immunology, University of Washington School of Medicine, Seattle, WA 98195, USA.

Department of Biochemistry, University of Washington School of Medicine, Seattle, WA 98195, USA.

出版信息

Nucleic Acids Res. 2018 Aug 21;46(14):6962-6973. doi: 10.1093/nar/gky588.

Abstract

Discontinuities in only a single strand of the DNA duplex occur frequently, as a result of DNA damage or as intermediates in essential nuclear processes and DNA repair. Nicks are the simplest of these lesions: they carry clean ends bearing 3'-hydroxyl groups that can undergo ligation or prime new DNA synthesis. In contrast, single-strand breaks also interrupt only one DNA strand, but they carry damaged ends that require clean-up before subsequent steps in repair. Despite their apparent simplicity, nicks can have significant consequences for genome stability. The availability of enzymes that can introduce a nick almost anywhere in a large genome now makes it possible to systematically analyze repair of nicks. Recent experiments demonstrate that nicks can initiate recombination via pathways distinct from those active at double-strand breaks (DSBs). Recombination at targeted DNA nicks can be very efficient, and because nicks are intrinsically less mutagenic than DSBs, nick-initiated gene correction is useful for genome engineering and gene therapy. This review revisits some physiological examples of recombination at nicks, and outlines experiments that have demonstrated that nicks initiate homology-directed repair by distinctive pathways, emphasizing research that has contributed to our current mechanistic understanding of recombination at nicks in mammalian cells.

摘要

DNA 双螺旋结构中的单链经常会出现不连续性,这是由于 DNA 损伤或基本核过程和 DNA 修复的中间产物造成的。切口是这些损伤中最简单的一种:它们带有清洁的 3' - 羟基末端,可以进行连接或启动新的 DNA 合成。相比之下,单链断裂也只中断一条 DNA 链,但它们带有受损的末端,在修复的后续步骤之前需要进行清理。尽管切口看起来很简单,但它们会对基因组稳定性产生重大影响。现在,能够在大型基因组中的几乎任何位置引入切口的酶的可用性使得系统地分析切口修复成为可能。最近的实验表明,切口可以通过不同于双链断裂(DSB)的途径启动重组。靶向 DNA 切口的重组可以非常高效,而且由于切口比 DSB 固有地突变率更低,因此切口引发的基因校正对于基因组工程和基因治疗非常有用。这篇综述回顾了一些在切口处发生重组的生理实例,并概述了已经证明切口通过独特途径引发同源定向修复的实验,强调了有助于我们目前对哺乳动物细胞中切口处重组的机制理解的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/329d/6101574/afc0721f666b/gky588fig1.jpg

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