[How to Shift the Equilibrium of DNA Break Repair in Favor of Homologous Recombination].

Q3 Medicine
O A Averina, S A Kuznetsova, O A Permyakov, P V Sergiev
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引用次数: 0

Abstract

The CRISPR/Cas technology of targeted genome editing made it possible to carry out genetic engineering manipulations with eukaryotic genomes with a high efficiency. Targeted induction of site-specific DNA breaks is one of the key stages of the technology. The cell repairs the breaks via one of the two pathways, nonhomologous end joining (NHEJ) and homology-driven repair (HDR). The choice of the DNA repair pathway is determined by the architecture of the DNA break region formed as a result of terminal resection and depends on the cell cycle phase. NHEJ is the main pathway of double-strand break (DSB) repair in mammalian cells and involves a nonspecific ligation reaction. The reaction accuracy depends on the structure of break ends, and various insertions or deletions may arise as a result in the target genome region. Integration of a necessary sequence into the genome occurs via HDR, which requires a template with homology regions flanking a DSB. Introducing a genetic construct into a particular genomic locus is an important task, but is currently intricate and laborious to perform. However, the choice of the repair pathway can be of principal importance for basic research of gene functions and construction of animal models of human diseases to develop therapies. The review summarizes and systematizes the available information on strategies designed to increase the HDR efficiency. The strategies that most efficiently shift the balance towards HDR include use of NHEJ inhibitors, regulation of the key factors of homologous recombination, control of the cell cycle and chromatin status, and construction of HDR templates.

[如何使DNA断裂修复平衡向同源重组方向转变]。
靶向基因组编辑的CRISPR/Cas技术使得对真核生物基因组进行高效的基因工程操作成为可能。靶向诱导位点特异性DNA断裂是该技术的关键阶段之一。细胞通过非同源末端连接(NHEJ)和同源驱动修复(HDR)两种途径之一修复断裂。DNA修复途径的选择取决于末端切除形成的DNA断裂区域的结构,并取决于细胞周期阶段。NHEJ是哺乳动物细胞双链断裂(DSB)修复的主要途径,涉及非特异性结扎反应。反应的准确性取决于断裂端的结构,靶基因组区域可能出现各种插入或缺失。将必要的序列整合到基因组中是通过HDR进行的,这需要一个模板,其同源区域位于DSB的两侧。将遗传结构引入特定的基因组位点是一项重要的任务,但目前执行起来复杂而费力。然而,修复途径的选择对于基因功能的基础研究和人类疾病动物模型的构建以开发治疗方法具有重要意义。该综述总结并系统化了旨在提高HDR效率的现有战略信息。最有效地将平衡转向HDR的策略包括使用NHEJ抑制剂,调节同源重组的关键因素,控制细胞周期和染色质状态,以及构建HDR模板。
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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来源期刊
Molekulyarnaya Biologiya
Molekulyarnaya Biologiya Medicine-Medicine (all)
CiteScore
0.70
自引率
0.00%
发文量
131
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