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A Fine-Structure Map of Spontaneous Mitotic Crossovers in the Yeast Saccharomyces cerevisiae

机译:酵母酵母中自发有丝分裂的精细结构图

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Homologous recombination is an important mechanism for the repair of DNA damage in mitotically dividing cells. Mitotic crossovers between homologues with heterozygous alleles can produce two homozygous daughter cells (loss of heterozygosity), whereas crossovers between repeated genes on non-homologous chromosomes can result in translocations. Using a genetic system that allows selection of daughter cells that contain the reciprocal products of mitotic crossing over, we mapped crossovers and gene conversion events at a resolution of about 4 kb in a 120-kb region of chromosome V of Saccharomyces cerevisiae. The gene conversion tracts associated with mitotic crossovers are much longer (averaging about 12 kb) than the conversion tracts associated with meiotic recombination and are non-randomly distributed along the chromosome. In addition, about 40% of the conversion events have patterns of marker segregation that are most simply explained as reflecting the repair of a chromosome that was broken in G1 of the cell cycle.
机译:同源重组是修复有丝分裂分裂细胞中DNA损伤的重要机制。具有杂合等位基因的同系物之间的有丝分裂交换可产生两个纯合子细胞(杂合性的损失),而在非同源染色体上重复的基因之间的交换可导致易位。使用一种遗传系统,该系统允许选择包含有丝分裂交换的倒数产物的子细胞,我们在酿酒酵母V染色体的120 kb区域中以约4 kb的分辨率绘制了杂交和基因转化事件。与有丝分裂转换相关的基因转换通道比与减数分裂重组相关的转换通道更长(平均约12 kb),并且沿着染色体非随机分布。此外,大约40%的转换事件具有标记分离的模式,最简单地解释为反映了在细胞周期G1中断裂的染色体的修复。

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