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Crossover Invariance Determined by Partner Choice for Meiotic DNA Break Repair

机译:由合作伙伴选择确定的减数分裂DNA修复的交叉不变性

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Crossovers between meiotic homologs are crucial for their proper segregation, and crossover number and position are carefully controlled. Crossover homeostasis in budding yeast maintains crossovers at the expense of noncrossovers when double-strand DNA break (DSB) frequency is reduced. The mechanism of maintaining constant crossover levels in other species has been unknown. Here we investigate in fission yeast a different aspect of crossover control-the near invariance of crossover frequency per kb of DNA despite large variations in DSB intensity across the genome. Crossover invariance involves the choice of sister chromatid versus homolog for DSB repair. At strong DSB hotspots, intersister repair outnumbers interhomolog repair ~3:1, but our genetic and physical data indicate the converse in DSB-cold regions. This unanticipated mechanism of crossover control may operate in many species and explain, for example, the large excess of DSBs over crossovers and the repair of DSBs on unpaired chromosomes in diverse species.
机译:减数分裂同源物之间的交换对于它们的正确隔离至关重要,并且交换数目和位置都受到仔细控制。当双链DNA断裂(DSB)频率降低时,发芽酵母中的交叉稳态会以非交叉为代价维持交叉。维持其他物种恒定的交叉水平的机制尚不清楚。在这里,我们在裂变酵母中研究了交叉控制的一个不同方面-尽管整个基因组中DSB强度发生了很大的变化,但每kb DNA的交叉频率几乎不变。交叉不变性涉及姐妹染色单体对同系物的选择,以进行DSB修复。在DSB强区,姊妹间修复的数量比同系物修复的数量要大,约为3:1,但我们的遗传和物理数据表明,DSB寒冷地区的情况相反。这种意想不到的交叉控制机制可能在许多物种中起作用,并且可以解释,例如,DSB相对于交叉而言大大过量,并且在各种物种的未配对染色体上修复了DSB。

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