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Phosphorylation of centromeric histone H3 variant regulates chromosome segregation in Saccharomyces cerevisiae

机译:着丝粒组蛋白H3变体的磷酸化调节酿酒酵母中的染色体分离

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摘要

The centromeric histone H3 variant (CenH3) is essential for chromosome segregation in eukaryotes. We identify posttranslational modifications of Saccharomyces cerevisiae CenH3, Cse4. Functional characterization of cse4 phosphorylation mutants shows growth and chromosome segregation defects when combined with kinetochore mutants okp1 and ame1. Using a phosphoserine-specific antibody, we show that the association of phosphorylated Cse4 with centromeres increases in response to defective microtubule attachment or reduced cohesion. We determine that evolutionarily conserved Ipl1/Aurora B contributes to phosphorylation of Cse4, as levels of phosphorylated Cse4 are reduced at centromeres in ipl1 strains in vivo, and in vitro assays show phosphorylation of Cse4 by Ipl1. Consistent with these results, we observe that a phosphomimetic cse4-4SD mutant suppresses the temperature-sensitive growth of ipl1-2 and Ipl1 substrate mutants dam1 spc34 and ndc80, which are defective for chromosome biorientation. Furthermore, cell biology approaches using a green fluorescent protein–labeled chromosome show that cse4-4SD suppresses chromosome segregation defects in dam1 spc34 strains. On the basis of these results, we propose that phosphorylation of Cse4 destabilizes defective kinetochores to promote biorientation and ensure faithful chromosome segregation. Taken together, our results provide a detailed analysis, in vivo and in vitro, of Cse4 phosphorylation and its role in promoting faithful chromosome segregation.
机译:着丝粒组蛋白H3变体(CenH3)对于真核生物中的染色体分离至关重要。我们确定啤酒酵母CenH3,Cse4的翻译后修饰。 cse4磷酸化突变体的功能表征显示与生长线粒体突变体okp1和ame1结合时的生长和染色体分离缺陷。使用磷酸丝氨酸特异的抗体,我们表明磷酸化的Cse4与着丝粒的关联增加了对有缺陷的微管附件或降低的凝聚力的响应。我们确定,进化上保守的Ipl1 / Aurora B有助于Cse4的磷酸化,因为磷酸化的Cse4的水平在ipl1株体内的着丝粒处减少,并且体外测定显示Ipl1的Cse4的磷酸化。与这些结果一致,我们观察到拟磷酸酶cse4-4SD突变体抑制了ipl1-2和Ipl1底物突变体dam​​1 spc34和ndc80的温度敏感型生长,这些缺陷对于染色体生物定向是不利的。此外,使用绿色荧光蛋白标记的染色体的细胞生物学方法显示cse4-4SD可抑制dam1 spc34菌株中的染色体分离缺陷。根据这些结果,我们建议Cse4的磷酸化会破坏有缺陷的动植物,从而促进生物定向并确保忠实的染色体分离。两者合计,我们的结果提供了体内和体外Cse4磷酸化及其在促进忠实染色体分离中的作用的详细分析。

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