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A hierarchical combination of factors shapes the genome-wide topography of yeast meiotic recombination initiation

机译:因素的层次组合决定了酵母减数分裂重组启动的全基因组范围

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The nonrandom distribution of meiotic recombination influences patterns of inheritance and genome evolution, but chromosomal features governing this distribution are poorly understood. Formation of the DNA double-strand breaks (DSBs) that initiate recombination results in the accumulation of Spo11 protein covalently bound to small DNA fragments. By sequencing these fragments, we uncover a genome-wide DSB map of unprecedented resolution and sensitivity. We use this map to explore how DSB distribution is influenced by large-scale chromosome structures, chromatin, transcription factors, and local sequence composition. Our analysis offers mechanistic insight into DSB formation and early processing steps, supporting the view that the recombination terrain is molded by combinatorial and hierarchical interaction of factors that work on widely different size scales. This map illuminates the occurrence of DSBs in repetitive DNA elements, repair of which can lead to chromosomal rearrangements. We also discuss implications for evolutionary dynamics of recombination hot spots.
机译:减数分裂重组的非随机分布影响遗传和基因组进化的模式,但是控制这种分布的染色体特征却知之甚少。启动重组的DNA双链断裂(DSB)的形成导致Spo11蛋白的共价结合到小DNA片段的积累。通过对这些片段进行测序,我们发现了前所未有的分辨率和灵敏度的全基因组DSB图。我们使用该图来探索DSB分布如何受到大规模染色体结构,染色质,转录因子和局部序列组成的影响。我们的分析提供了对DSB形成和早期处理步骤的机械洞察力,支持了这样的观点,即重组地形是由在广泛不同的规模范围内起作用的因素的组合和分层相互作用所塑造的。该图阐明了重复DNA元件中DSB的出现,其修复可能导致染色体重排。我们还讨论了重组热点进化动力学的意义。

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