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减数分裂中 Exo1 的时空和生化活性:双链断裂切除和双链 Holliday 连接的解析。

Temporally and biochemically distinct activities of Exo1 during meiosis: double-strand break resection and resolution of double Holliday junctions.

机构信息

Howard Hughes Medical Institute, University of California, Davis, One Shields Avenue, Davis, CA 95616, USA.

出版信息

Mol Cell. 2010 Dec 22;40(6):1001-15. doi: 10.1016/j.molcel.2010.11.032.

Abstract

The Rad2/XPG family nuclease, Exo1, functions in a variety of DNA repair pathways. During meiosis, Exo1 promotes crossover recombination and thereby facilitates chromosome segregation at the first division. Meiotic recombination is initiated by programmed DNA double-strand breaks (DSBs). Nucleolytic resection of DSBs generates long 3' single-strand tails that undergo strand exchange with a homologous chromosome to form joint molecule (JM) intermediates. We show that meiotic DSB resection is dramatically reduced in exo1Δ mutants and test the idea that Exo1-catalyzed resection promotes crossing over by facilitating formation of crossover-specific JMs called double Holliday junctions (dHJs). Contrary to this idea, dHJs form at wild-type levels in exo1Δ mutants, implying that Exo1 has a second function that promotes resolution of dHJs into crossovers. Surprisingly, the dHJ resolution function of Exo1 is independent of its nuclease activities but requires interaction with the putative endonuclease complex, Mlh1-Mlh3. Thus, the DSB resection and procrossover functions of Exo1 during meiosis involve temporally and biochemically distinct activities.

摘要

Rad2/XPG 家族核酸酶 Exo1 参与多种 DNA 修复途径。在减数分裂过程中,Exo1 促进交叉重组,从而促进第一次分裂时的染色体分离。减数分裂重组是由程序性 DNA 双链断裂 (DSB) 引发的。DSB 的核酸酶切除会产生长的 3'单链尾巴,这些尾巴与同源染色体发生链交换,形成连接分子 (JM) 中间体。我们发现 exo1Δ 突变体中的减数分裂 DSB 切除显著减少,并检验了 Exo1 催化的切除通过促进形成称为双 Holliday 连接体 (dHJ) 的交叉特异性 JM 来促进交叉的想法。与这个想法相反,dHJ 在 exo1Δ 突变体中以野生型水平形成,这意味着 Exo1 具有促进 dHJ 解析为交叉的第二个功能。令人惊讶的是,Exo1 的 dHJ 解析功能不依赖于其核酸酶活性,但需要与假定的内切酶复合物 Mlh1-Mlh3 相互作用。因此,Exo1 在减数分裂过程中的 DSB 切除和前交叉功能涉及时间和生化上不同的活性。

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Regulation of the MLH1-MLH3 endonuclease in meiosis.减数分裂中 MLH1-MLH3 内切酶的调控。
Nature. 2020 Oct;586(7830):618-622. doi: 10.1038/s41586-020-2592-2. Epub 2020 Aug 19.

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