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首页> 外文期刊>PLoS Biology >Mapping Meiotic Single-Strand DNA Reveals a New Landscape of DNA Double-Strand Breaks in Saccharomyces cerevisiae
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Mapping Meiotic Single-Strand DNA Reveals a New Landscape of DNA Double-Strand Breaks in Saccharomyces cerevisiae

机译:映射减数分裂单链DNA揭示了酿酒酵母DNA双链断裂的新格局。

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摘要

DNA double-strand breaks (DSBs), which are formed by the Spo11 protein, initiate meiotic recombination. Previous DSB-mapping studies have used rad50S or sae2Δ mutants, which are defective in break processing, to accumulate Spo11-linked DSBs, and report large (≥ 50 kb) “DSB-hot” regions that are separated by “DSB-cold” domains of similar size. Substantial recombination occurs in some DSB-cold regions, suggesting that DSB patterns are not normal in rad50S or sae2Δ mutants. We therefore developed a novel method to map genome-wide, single-strand DNA (ssDNA)–associated DSBs that accumulate in processing-capable, repair-defective dmc1Δ and dmc1Δ rad51Δ mutants. DSBs were observed at known hot spots, but also in most previously identified “DSB-cold” regions, including near centromeres and telomeres. Although approximately 40% of the genome is DSB-cold in rad50S mutants, analysis of meiotic ssDNA from dmc1Δ shows that most of these regions have substantial DSB activity. Southern blot assays of DSBs in selected regions in dmc1Δ, rad50S, and wild-type cells confirm these findings. Thus, DSBs are distributed much more uniformly than was previously believed. Comparisons of DSB signals in dmc1, dmc1 rad51, and dmc1 spo11 mutant strains identify Dmc1 as a critical strand-exchange activity genome-wide, and confirm previous conclusions that Spo11-induced lesions initiate all meiotic recombination.
机译:由Spo11蛋白形成的DNA双链断裂(DSB)启动减数分裂重组。以前的DSB映射研究使用了在断裂处理中存在缺陷的rad50S或sae2Δ突变体来积累Spo11连接的DSB,并报告了大的(≥50 kb)“ DSB热”区域,这些区域被“ DSB冷”域隔开大小相似。大量的重组发生在一些DSB冷的区域,这表明在rad50S或sae2Δ突变体中DSB模式不正常。因此,我们开发了一种新颖的方法来绘制全基因组单链DNA(ssDNA)相关的DSB,这些DSB累积在具有加工能力的,修复缺陷的dmc1Δ和dmc1Δrad51Δ突变体中。在已知的热点处也观察到了DSB,但在大多数先前鉴定的“ DSB冷”区域中也观察到了,包括靠近着丝粒和端粒。尽管在rad50S突变体中约40%的基因组是DSB冷的,但对dmc1Δ的减数分裂ssDNA的分析显示,这些区域中的大多数具有实质的DSB活性。在dmc1Δ,rad50S和野生型细胞中选定区域的DSB的Southern印迹分析证实了这些发现。因此,DSB的分布比以前认为的要均匀得多。比较dmc1,dmc1 rad51和dmc1 spo11突变菌株中的DSB信号,将Dmc1识别为全基因组中的关键链交换活性,并证实了先前的结论,即Spo11诱导的损伤会引发所有减数分裂重组。

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