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保守的 spc105p/kre28p 复合物在动粒-微管结合和纺锤体组装检查点中的作用。

Roles for the conserved spc105p/kre28p complex in kinetochore-microtubule binding and the spindle assembly checkpoint.

机构信息

Department of Experimental Oncology, European Institute of Oncology, Milan, Italy.

出版信息

PLoS One. 2009 Oct 28;4(10):e7640. doi: 10.1371/journal.pone.0007640.

Abstract

BACKGROUND

Kinetochores attach sister chromatids to microtubules of the mitotic spindle and orchestrate chromosome disjunction at anaphase. Although S. cerevisiae has the simplest known kinetochores, they nonetheless contain approximately 70 subunits that assemble on centromeric DNA in a hierarchical manner. Developing an accurate picture of the DNA-binding, linker and microtubule-binding layers of kinetochores, including the functions of individual proteins in these layers, is a key challenge in the field of yeast chromosome segregation. Moreover, comparison of orthologous proteins in yeast and humans promises to extend insight obtained from the study of simple fungal kinetochores to complex animal cell kinetochores.

PRINCIPAL FINDINGS

We show that S. cerevisiae Spc105p forms a heterotrimeric complex with Kre28p, the likely orthologue of the metazoan kinetochore protein Zwint-1. Through systematic analysis of interdependencies among kinetochore complexes, focused on Spc105p/Kre28p, we develop a comprehensive picture of the assembly hierarchy of budding yeast kinetochores. We find Spc105p/Kre28p to comprise the third linker complex that, along with the Ndc80 and MIND linker complexes, is responsible for bridging between centromeric heterochromatin and kinetochore MAPs and motors. Like the Ndc80 complex, Spc105p/Kre28p is also essential for kinetochore binding by components of the spindle assembly checkpoint. Moreover, these functions are conserved in human cells.

CONCLUSIONS/SIGNIFICANCE: Spc105p/Kre28p is the last of the core linker complexes to be analyzed in yeast and we show it to be required for kinetochore binding by a discrete subset of kMAPs (Bim1p, Bik1p, Slk19p) and motors (Cin8p, Kar3p), all of which are nonessential. Strikingly, dissociation of these proteins from kinetochores prevents bipolar attachment, even though the Ndc80 and DASH complexes, the two best-studied kMAPs, are still present. The failure of Spc105 deficient kinetochores to bind correctly to spindle microtubules and to recruit checkpoint proteins in yeast and human cells explains the observed severity of missegregation phenotypes.

摘要

背景

动粒将姐妹染色单体附着到有丝分裂纺锤体的微管上,并在后期协调染色体分离。尽管酿酒酵母具有最简单的动粒,但它们仍然包含大约 70 个亚基,这些亚基以层次方式组装在着丝粒 DNA 上。精确描绘动粒的 DNA 结合层、连接子层和微管结合层,包括这些层中单个蛋白质的功能,是酵母染色体分离领域的一个关键挑战。此外,比较酵母和人类中的同源蛋白有望将从研究简单真菌动粒中获得的见解扩展到复杂的动物细胞动粒。

主要发现

我们表明,酿酒酵母 Spc105p 与 Kre28p 形成异源三聚体复合物,Kre28p 可能是后生动物动粒蛋白 Zwint-1 的同源物。通过系统分析动粒复合物之间的相互依赖关系,重点是 Spc105p/Kre28p,我们构建了芽殖酵母动粒组装层次结构的综合图景。我们发现 Spc105p/Kre28p 构成第三个连接子复合物,与 Ndc80 和 MIND 连接子复合物一起,负责桥接着丝粒异染色质与动粒 MAP 和马达之间的连接。与 Ndc80 复合物一样,Spc105p/Kre28p 对于纺锤体组装检查点组件与动粒的结合也是必不可少的。此外,这些功能在人类细胞中也是保守的。

结论/意义:Spc105p/Kre28p 是酵母中最后一个被分析的核心连接子复合物,我们表明它对于离散的动粒 MAP(Bim1p、Bik1p、Slk19p)和马达(Cin8p、Kar3p)的结合是必需的,所有这些都是非必需的。引人注目的是,这些蛋白质与动粒的解离会阻止两极附着,尽管 Ndc80 和 DASH 复合物是研究最多的两个动粒 MAP,仍然存在。酵母和人类细胞中 Spc105 缺陷动粒不能正确结合纺锤体微管并募集检查点蛋白,这解释了观察到的严重错误分离表型。

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