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小染色体如何知道它们很小?在最短的酵母染色体上最大化减数分裂断裂的形成。

How do small chromosomes know they are small? Maximizing meiotic break formation on the shortest yeast chromosomes.

机构信息

Molecular Biology Program, Memorial Sloan Kettering Cancer Center, New York, NY, 10065, USA.

Weill Graduate School of Medical Sciences, Cornell University, New York, NY, 10021, USA.

出版信息

Curr Genet. 2021 Jun;67(3):431-437. doi: 10.1007/s00294-021-01160-9. Epub 2021 Feb 18.

DOI:10.1007/s00294-021-01160-9
PMID:33604699
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8141002/
Abstract

The programmed formation of DNA double-strand breaks (DSBs) in meiotic prophase I initiates the homologous recombination process that yields crossovers between homologous chromosomes, a prerequisite to accurately segregating chromosomes during meiosis I (MI). In the budding yeast Saccharomyces cerevisiae, proteins required for meiotic DSB formation (DSB proteins) accumulate to higher levels specifically on short chromosomes to ensure that these chromosomes make DSBs. We previously demonstrated that as-yet undefined cis-acting elements preferentially recruit DSB proteins and promote higher levels of DSBs and recombination and that these intrinsic features are subject to selection pressure to maintain the hyperrecombinogenic properties of short chromosomes. Thus, this targeted boosting of DSB protein binding may be an evolutionarily recurrent strategy to mitigate the risk of meiotic mis-segregation caused by karyotypic constraints. However, the underlining mechanisms are still elusive. Here, we discuss possible scenarios in which components of the meiotic chromosome axis (Red1 and Hop1) bind to intrinsic features independent of the meiosis-specific cohesin subunit Rec8 and DNA replication, promoting preferential binding of DSB proteins to short chromosomes. We also propose a model where chromosome position in the nucleus, influenced by centromeres, promotes the short-chromosome boost of DSB proteins.

摘要

在减数分裂前期 I 中,DNA 双链断裂(DSBs)的程序性形成启动了同源重组过程,该过程产生同源染色体之间的交叉,这是减数分裂 I(MI)中染色体准确分离的前提。在芽殖酵母酿酒酵母中,减数分裂 DSB 形成所需的蛋白质(DSB 蛋白)在短染色体上特异性积累到更高水平,以确保这些染色体发生 DSB。我们之前证明,尚未定义的顺式作用元件优先招募 DSB 蛋白,并促进更高水平的 DSB 和重组,并且这些内在特征受到选择压力的影响,以维持短染色体的高重组特性。因此,这种靶向增强 DSB 蛋白结合可能是一种反复出现的进化策略,可减轻由核型限制引起的减数分裂错误分离的风险。然而,潜在的机制仍不清楚。在这里,我们讨论了几种可能的情况,即减数分裂染色体轴的组件(Red1 和 Hop1)独立于减数分裂特异性黏合蛋白亚基 Rec8 和 DNA 复制与内在特征结合,促进 DSB 蛋白优先结合到短染色体上。我们还提出了一个模型,其中核内染色体位置受着丝粒影响,促进了 DSB 蛋白在短染色体上的增强。

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Homeostatic Control of Meiotic Prophase Checkpoint Function by Pch2 and Hop1.通过 Pch2 和 Hop1 对减数分裂前期检验点功能的动态控制。
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