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RecG解旋酶促进DNA双链断裂修复。

RecG helicase promotes DNA double-strand break repair.

作者信息

Meddows Tom R, Savory Andrew P, Lloyd Robert G

机构信息

Institute of Genetics, University of Nottingham, Queen's Medical Centre, Nottingham NG7 2UH, UK.

出版信息

Mol Microbiol. 2004 Apr;52(1):119-32. doi: 10.1111/j.1365-2958.2003.03970.x.

Abstract

Double-strand breaks pose a major threat to the genome and must be repaired accurately if structural and functional integrity are to be preserved. This is usually achieved via homologous recombination, which enables the ends of a broken DNA molecule to engage an intact duplex and prime synthesis of the DNA needed for repair. In Escherichia coli, repair relies on the RecBCD and RecA proteins, the combined ability of which to initiate recombination and form joint-molecule intermediates is well understood. To shed light on subsequent events, we exploited the I-SceI homing endonuclease of yeast to make breaks at I-SceI cleavage sites engineered into the chromosome. We show that survival depends on RecA and RecBCD, and that subsequent events can proceed via either of two pathways, one dependent on the RuvABC Holliday junction resolvase and the other on RecG helicase. Both pathways rely on PriA, presumably to facilitate DNA replication. We discuss the possibility that classical Holliday junctions may not be essential intermediates in repair and consider alternative pathways for RecG-dependent separation of joint molecules formed by RecA.

摘要

双链断裂对基因组构成重大威胁,若要维持结构和功能完整性,就必须准确修复。这通常通过同源重组来实现,同源重组能使断裂的DNA分子末端与完整的双链结合,并启动修复所需DNA的合成。在大肠杆菌中,修复依赖于RecBCD和RecA蛋白,人们对它们启动重组和形成联合分子中间体的综合能力已了解得很清楚。为了阐明后续事件,我们利用酵母的I-SceI归巢内切酶在工程改造到染色体中的I-SceI切割位点产生双链断裂。我们发现存活依赖于RecA和RecBCD,且后续事件可通过两条途径中的任意一条进行,一条依赖于RuvABC霍利迪连接体解离酶,另一条依赖于RecG解旋酶。两条途径都依赖PriA,推测是为了促进DNA复制。我们讨论了经典霍利迪连接体可能并非修复过程中必不可少的中间体这一可能性,并考虑了RecG依赖的RecA形成的联合分子分离的替代途径。

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