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联会复合体在减数分裂错配修复中的作用。

A role for synaptonemal complex in meiotic mismatch repair.

机构信息

Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, CT 06459, USA.

Department of Obstetrics, Gynecology and Reproductive Sciences, Center of Reproductive Sciences, University of California, San Francisco, San Francisco, CA 94143, USA.

出版信息

Genetics. 2022 Feb 4;220(2). doi: 10.1093/genetics/iyab230.

Abstract

A large subset of meiotic recombination intermediates form within the physical context of synaptonemal complex (SC), but the functional relationship between SC structure and homologous recombination remains obscure. Our prior analysis of strains deficient for SC central element proteins demonstrated that tripartite SC is dispensable for interhomolog recombination in Saccharomyces cerevisiae. Here, we report that while dispensable for recombination per se, SC proteins promote efficient mismatch repair at interhomolog recombination sites. Failure to repair mismatches within heteroduplex-containing meiotic recombination intermediates leads to genotypically sectored colonies (postmeiotic segregation events). We discovered increased postmeiotic segregation at THR1 in cells lacking Ecm11 or Gmc2, or in the SC-deficient but recombination-proficient zip1[Δ21-163] mutant. High-throughput sequencing of octad meiotic products furthermore revealed a genome-wide increase in recombination events with unrepaired mismatches in ecm11 mutants relative to wildtype. Meiotic cells missing Ecm11 display longer gene conversion tracts, but tract length alone does not account for the higher frequency of unrepaired mismatches. Interestingly, the per-nucleotide mismatch frequency is elevated in ecm11 when analyzing all gene conversion tracts, but is similar between wildtype and ecm11 if considering only those events with unrepaired mismatches. Thus, in both wildtype and ecm11 strains a subset of recombination events is susceptible to a similar degree of inefficient mismatch repair, but in ecm11 mutants a larger fraction of events fall into this inefficient repair category. Finally, we observe elevated postmeiotic segregation at THR1 in mutants with a dual deficiency in MutSγ crossover recombination and SC assembly, but not in the mlh3 mutant, which lacks MutSγ crossovers but has abundant SC. We propose that SC structure promotes efficient mismatch repair of joint molecule recombination intermediates, and that absence of SC is the molecular basis for elevated postmeiotic segregation in both MutSγ crossover-proficient (ecm11, gmc2) and MutSγ crossover-deficient (msh4, zip3) strains.

摘要

大量的减数分裂重组中间体在联会复合体(SC)的物理环境中形成,但 SC 结构与同源重组之间的功能关系仍然不清楚。我们之前对 SC 中心元件蛋白缺失的菌株进行的分析表明,三部分 SC 对于酿酒酵母中的同源重组是可有可无的。在这里,我们报告说,尽管 SC 蛋白本身对于重组不是必需的,但它促进了同源重组位点的有效错配修复。如果在含有异源双链的减数分裂重组中间体中未能修复错配,就会导致基因型分节的菌落(减数分裂后分离事件)。我们发现,在缺乏 Ecm11 或 Gmc2 的细胞中,或在 SC 缺失但重组能力正常的 zip1[Δ21-163]突变体中,THR1 减数分裂后分离增加。对八联体减数分裂产物的高通量测序进一步揭示,在 ecm11 突变体中,与野生型相比,未修复错配的重组事件在全基因组范围内增加。缺少 Ecm11 的减数分裂细胞显示出更长的基因转换片段,但片段长度本身并不能解释未修复错配的更高频率。有趣的是,在分析所有基因转换片段时,ecm11 中的每个核苷酸错配频率升高,但在野生型和 ecm11 之间,如果只考虑那些未修复错配的事件,这个频率是相似的。因此,在野生型和 ecm11 菌株中,一部分重组事件都容易受到类似程度的低效错配修复的影响,但在 ecm11 突变体中,更大比例的事件属于这种低效修复类别。最后,我们观察到在 MutSγ 交叉重组和 SC 组装双重缺陷的突变体中,THR1 的减数分裂后分离增加,但在缺乏 MutSγ 交叉的 mlh3 突变体中没有观察到这种增加,后者有丰富的 SC。我们提出,SC 结构促进了联会复合体重组中间体的有效错配修复,而 SC 的缺失是 MutSγ 交叉重组体丰富的 ecm11、gmc2 菌株以及 MutSγ 交叉缺失的 msh4、zip3 菌株中减数分裂后分离增加的分子基础。

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