首页> 外文OA文献 >Indistinguishable Landscapes of Meiotic DNA Breaks in rad50+ and rad50S Strains of Fission Yeast Revealed by a Novel rad50+ Recombination Intermediate
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Indistinguishable Landscapes of Meiotic DNA Breaks in rad50+ and rad50S Strains of Fission Yeast Revealed by a Novel rad50+ Recombination Intermediate

机译:rad50 +重组中间体揭示的裂变酵母rad50 +和rad50S菌株减数分裂DNA断裂的难以区分的景观。

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摘要

The fission yeast Schizosaccharomyces pombe Rec12 protein, the homolog of Spo11 in other organisms, initiates meiotic recombination by creating DNA double-strand breaks (DSBs) and becoming covalently linked to the DNA ends of the break. This protein–DNA linkage has previously been detected only in mutants such as rad50S in which break repair is impeded and DSBs accumulate. In the budding yeast Saccharomyces cerevisiae, the DSB distribution in a rad50S mutant is markedly different from that in wild-type (RAD50) meiosis, and it was suggested that this might also be true for other organisms. Here, we show that we can detect Rec12-DNA linkages in Sc. pombe rad50+ cells, which are proficient for DSB repair. In contrast to the results from Sa. cerevisiae, genome-wide microarray analysis of Rec12-DNA reveals indistinguishable meiotic DSB distributions in rad50+ and rad50S strains of Sc. pombe. These results confirm our earlier findings describing the occurrence of widely spaced DSBs primarily in large intergenic regions of DNA and demonstrate the relevance and usefulness of fission yeast studies employing rad50S. We propose that the differential behavior of rad50S strains reflects a major difference in DSB regulation between the two species—specifically, the requirement for the Rad50-containing complex for DSB formation in budding yeast but not in fission yeast. Use of rad50S and related mutations may be a useful method for DSB analysis in other species.
机译:裂变酵母粟酒裂殖酵母Rec12蛋白是Spo11在其他生物中的同系物,通过产生DNA双链断裂(DSB)并与断裂的DNA末端共价连接,从而引发减数分裂重组。以前仅在rad50S等突变体中检测到这种蛋白质与DNA的连接,突变体阻碍了断裂修复并且DSB积累。在出芽的酿酒酵母中,rad50S突变体中的DSB分布与野生型(RAD50)减数分裂中的DSB分布显着不同,这提示其他生物也可能如此。在这里,我们表明我们可以检测Sc中的Rec12-DNA连锁。精通DSB修复的pombe rad50 +细胞。与Sa的结果相反。在酿酒酵母中,对Rec12-DNA进行全基因组微阵列分析,发现Sc的rad50 +和rad50S菌株的减数分裂DSB分布无法区分。庞贝。这些结果证实了我们的早期发现,该发现描述了间隔较大的DSB主要在DNA大的基因间区域中的发生,并证明了采用rad50S的裂变酵母研究的相关性和实用性。我们提出,rad50S菌株的差异行为反映了两个物种之间DSB调节的主要差异-具体来说,是对芽芽酵母中而不是裂变酵母中形成DSB的含Rad50的复合物的要求。 rad50S和相关突变的使用可能是其他物种进行DSB分析的有用方法。

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