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MRN-C 复合物成员的相互依存和可分离功能将减数分裂 DSB 的形成和修复偶联。

Interdependent and separable functions of MRN-C complex members couple formation and repair of meiotic DSBs.

机构信息

Department of Developmental Biology, Stanford University School of Medicine, Stanford, CA 94305.

Department of Genetics, Stanford University School of Medicine, Stanford, CA 94305.

出版信息

Proc Natl Acad Sci U S A. 2018 May 8;115(19):E4443-E4452. doi: 10.1073/pnas.1719029115. Epub 2018 Apr 23.

Abstract

Faithful inheritance of genetic information through sexual reproduction relies on the formation of crossovers between homologous chromosomes during meiosis, which, in turn, relies on the formation and repair of numerous double-strand breaks (DSBs). As DSBs pose a potential threat to the genome, mechanisms that ensure timely and error-free DSB repair are crucial for successful meiosis. Here, we identify NBS-1, the ortholog of the NBS1 (mutated in Nijmegen Breakage Syndrome) subunit of the conserved MRE11-RAD50-NBS1/Xrs2 (MRN) complex, as a key mediator of DSB repair via homologous recombination (HR) during meiosis. Loss of leads to severely reduced loading of recombinase RAD-51, ssDNA binding protein RPA, and pro-crossover factor COSA-1 during meiotic prophase progression; aggregated and fragmented chromosomes at the end of meiotic prophase; and 100% progeny lethality. These phenotypes reflect a role for NBS-1 in processing of meiotic DSBs for HR that is shared with its interacting partners MRE-11-RAD-50 and COM-1 (ortholog of Com1/Sae2/CtIP). Unexpectedly, in contrast to MRE-11 and RAD-50, NBS-1 is not required for meiotic DSB formation. Meiotic defects of the mutant are partially suppressed by abrogation of the nonhomologous end-joining (NHEJ) pathway, indicating a role for NBS-1 in antagonizing NHEJ during meiosis. Our data further reveal that NBS-1 and COM-1 play distinct roles in promoting HR and antagonizing NHEJ. We propose a model in which different components of the MRN-C complex work together to couple meiotic DSB formation with efficient and timely engagement of HR, thereby ensuring crossover formation and restoration of genome integrity before the meiotic divisions.

摘要

通过有性生殖忠实遗传信息依赖于减数分裂过程中同源染色体之间形成交叉,而这又依赖于大量双链断裂(DSB)的形成和修复。由于 DSB 对基因组构成潜在威胁,因此确保及时无误的 DSB 修复的机制对于减数分裂的成功至关重要。在这里,我们鉴定出 NBS-1,即保守的 MRE11-RAD50-NBS1/Xrs2(MRN)复合物中 NBS1(在 Nijmegen 断裂综合征中突变)亚基的同源物,作为减数分裂过程中通过同源重组(HR)修复 DSB 的关键介质。的缺失导致在减数分裂前期进展过程中,重组酶 RAD-51、单链 DNA 结合蛋白 RPA 和前交叉因子 COSA-1 的加载严重减少;减数分裂前期结束时染色体聚集和碎片化;并且 100%的后代致死。这些表型反映了 NBS-1 在 HR 处理减数分裂 DSB 中的作用,这与它的相互作用伙伴 MRE-11-RAD-50 和 COM-1(Com1/Sae2/CtIP 的同源物)共享。出乎意料的是,与 MRE-11 和 RAD-50 不同,NBS-1 不是减数分裂 DSB 形成所必需的。的突变体的减数分裂缺陷部分被非同源末端连接(NHEJ)途径的缺失所抑制,表明 NBS-1 在减数分裂中发挥作用,拮抗 NHEJ。我们的数据进一步表明,NBS-1 和 COM-1 在促进 HR 和拮抗 NHEJ 中发挥不同的作用。我们提出了一个模型,其中 MRN-C 复合物的不同成分共同作用,将减数分裂 DSB 的形成与 HR 的有效和及时参与联系起来,从而确保在减数分裂分裂之前形成交叉并恢复基因组完整性。

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