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The Mitotic Exit Network Regulates Spindle Pole Body Selection During Sporulation of Saccharomyces cerevisiae

机译:有丝分裂出口网络调节酿酒酵母孢子形成过程中纺锤体的选择。

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摘要

Age-based inheritance of centrosomes in eukaryotic cells is associated with faithful chromosome distribution in asymmetric cell divisions. During Saccharomyces cerevisiae ascospore formation, such an inheritance mechanism targets the yeast centrosome equivalents, the spindle pole bodies (SPBs) at meiosis II onset. Decreased nutrient availability causes initiation of spore formation at only the younger SPBs and their associated genomes. This mechanism ensures encapsulation of nonsister genomes, which preserves genetic diversity and provides a fitness advantage at the population level. Here, by usage of an enhanced system for sporulation-induced protein depletion, we demonstrate that the core mitotic exit network (MEN) is involved in age-based SPB selection. Moreover, efficient genome inheritance requires /- during a late step in spore maturation. We provide evidence that the meiotic functions of the MEN are more complex than previously thought. In contrast to mitosis, completion of the meiotic divisions does not strictly rely on the MEN whereas its activity is required at different time points during spore development. This is reminiscent of vegetative MEN functions in spindle polarity establishment, mitotic exit, and cytokinesis. In summary, our investigation contributes to the understanding of age-based SPB inheritance during sporulation of S. cerevisiae and provides general insights on network plasticity in the context of a specialized developmental program. Moreover, the improved system for a developmental-specific tool to induce protein depletion will be useful in other biological contexts.
机译:真核细胞中心体的基于年龄的遗传与不对称细胞分裂中忠实的染色体分布有关。在酿酒酵母子囊孢子形成过程中,这种遗传机制靶向酵母中心体,即减数分裂II发生时的纺锤极体(SPB)。营养物利用率的降低仅在较年轻的SPB及其相关基因组中引起孢子形成的开始。这种机制可确保非姐妹基因组的封装,从而保留遗传多样性并在人群水平上提供合适的优势。在这里,通过使用增强的系统用于孢子诱导的蛋白质耗竭,我们证明了核心有丝分裂出口网络(MEN)参与了基于年龄的SPB选择。此外,有效的基因组遗传在孢子成熟的后期需要进行。我们提供的证据表明,MEN的减数分裂功能比以前认为的要复杂。与有丝分裂相反,减数分裂的完成并不严格依赖于MEN,而在孢子发育的不同时间点需要其活性。这让人联想到营养型MEN在纺锤体极性建立,有丝分裂退出和胞质分裂中的功能。总而言之,我们的研究有助于了解酿酒酵母孢子形成过程中基于年龄的SPB遗传,并在专门的开发计划中提供有关网络可塑性的一般见解。此外,用于诱导蛋白质耗竭的特定于发育的工具的改进系统将在其他生物学环境中有用。

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