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Genome-wide genetic analysis of polyploidy in yeast

机译:酵母中多倍体的全基因组遗传分析

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Polyploidy, increased sets of chromosomes, occurs during development, cellular stress, disease and evolution. Despite its prevalence, little is known about the physiological alterations that accompany polyploidy. We previously described 'ploidy-specific lethality', where a gene deletion that is not lethal in haploid or diploid budding yeast causes lethality in triploids or tetraploids. Here we report a genome-wide screen to identify ploidy-specific lethal functions. Only 39 out of 3,740 mutations screened exhibited ploidy-specific lethality. Almost all of these mutations affect genomic stability by impairing homologous recombination, sister chromatid cohesion, or mitotic spindle function. We uncovered defects in wild-type tetraploids predicted by the screen, and identified mechanisms by which tetraploidization affects genomic stability. We show that tetraploids have a high incidence of syntelic/monopolar kinetochore attachments to the spindle pole. We suggest that this defect can be explained by mismatches in the ability to scale the size of the spindle pole body, spindle and kinetochores. Thus, geometric constraints may have profound effects on genome stability; the phenomenon described here may be relevant in a variety of biological contexts, including disease states such as cancer.
机译:多倍体是增加的染色体组,发生在发育,细胞应激,疾病和进化过程中。尽管它很普遍,但是关于多倍体的生理变化知之甚少。我们先前描述了“倍性特异性致死性”,其中在单倍体或二倍体发芽酵母中不致死的基因缺失会导致三倍体或四倍体致死。在这里,我们报告了一个全基因组筛选,以鉴定倍性特异性致死功能。在筛选的3,740个突变中,只有39个表现出倍性特异性的致死性。几乎所有这些突变都会通过破坏同源重组,姐妹染色单体凝聚力或有丝分裂纺锤体功能来影响基因组稳定性。我们发现了由屏幕预测的野生型四倍体中的缺陷,并确定了四倍体化影响基因组稳定性的机制。我们显示四倍体具有高发生率的心轴/单极线粒体附着到纺锤体极。我们建议,可以通过缩放主轴极体,主轴和动摆的大小的能力不匹配来解释此缺陷。因此,几何约束可能会对基因组稳定性产生深远影响。这里描述的现象可能与多种生物学环境有关,包括癌症等疾病。

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