Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, Connecticut, United States of America.
Proteomics and Metabolomics Facility, Center for Open Research Resources and Equipment, University of Connecticut, Storrs, Connecticut, United States of America.
PLoS Genet. 2024 Oct 15;20(10):e1011432. doi: 10.1371/journal.pgen.1011432. eCollection 2024 Oct.
Several protein ensembles facilitate crossover recombination and the associated assembly of synaptonemal complex (SC) during meiosis. In yeast, meiosis-specific factors including the DNA helicase Mer3, the "ZZS" complex consisting of Zip4, Zip2, and Spo16, the RING-domain protein Zip3, and the MutSγ heterodimer collaborate with crossover-promoting activity of the SC component, Zip1, to generate crossover-designated recombination intermediates. These ensembles also promote SC formation - the organized assembly of Zip1 with other structural proteins between aligned chromosome axes. We used proximity labeling to investigate spatial relationships between meiotic recombination and SC proteins in S. cerevisiae. We find that recombination initiation and SC factors are dispensable for proximity labeling of Zip3 by ZZS components, but proteins associated with early steps in recombination are required for Zip3 proximity labeling by MutSγ, suggesting that MutSγ joins Zip3 only after a recombination intermediate has been generated. We also find that zip1 separation-of-function mutants that are crossover deficient but still assemble SC fail to generate protein ensembles where Zip3 can engage ZZS and/or MutSγ. The SC structural protein Ecm11 is proximity labeled by ZZS proteins in a Zip4-dependent and Zip1-independent manner, but labeling of Ecm11 by Zip3 and MutSγ requires, at least in part, Zip1. Finally, mass spectrometry analysis of biotinylated proteins in eleven proximity labeling strains uncovered shared proximity targets of SC and crossover-associated proteins, some of which have not previously been implicated in meiotic recombination or SC formation, highlighting the potential of proximity labeling as a discovery tool.
几种蛋白质复合物在减数分裂过程中促进交叉重组和联会复合体 (SC) 的组装。在酵母中,包括 DNA 解旋酶 Mer3 在内的减数分裂特异性因子、由 Zip4、Zip2 和 Spo16 组成的“ZZS”复合物、RING 结构域蛋白 Zip3 和 MutSγ 异二聚体与 SC 成分 Zip1 的交叉促进活性协同作用,以产生交叉指定的重组中间体。这些复合物还促进 SC 的形成 - 在同源染色体轴之间,Zip1 与其他结构蛋白的有序组装。我们使用邻近标记法研究了 S. cerevisiae 减数分裂重组和 SC 蛋白之间的空间关系。我们发现,重组起始和 SC 因子对于 ZZS 成分对 Zip3 的邻近标记是可有可无的,但与重组早期步骤相关的蛋白对于 MutSγ 对 Zip3 的邻近标记是必需的,这表明 MutSγ 只有在产生重组中间体后才与 Zip3 结合。我们还发现,虽然分离功能的 zip1 突变体缺乏交叉但仍组装 SC,但无法形成 Zip3 可以与 ZZS 和/或 MutSγ 结合的蛋白质复合物。SC 结构蛋白 Ecm11 以 Zip4 依赖和 Zip1 独立的方式被 ZZS 蛋白邻近标记,但 Zip3 和 MutSγ 对 Ecm11 的标记至少部分需要 Zip1。最后,对 11 个邻近标记菌株中生物素化蛋白的质谱分析揭示了 SC 和交叉相关蛋白的共同邻近靶标,其中一些以前没有被认为与减数分裂重组或 SC 形成有关,突出了邻近标记作为一种发现工具的潜力。