首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Human Ska complex and Ndc80 complex interact to form a load-bearing assembly that strengthens kinetochore–microtubule attachments
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Human Ska complex and Ndc80 complex interact to form a load-bearing assembly that strengthens kinetochore–microtubule attachments

机译:人类Ska复合物和Ndc80复合物相互作用形成一个能增强动粒-微管附件的承重组件

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摘要

Accurate segregation of chromosomes relies on the force-bearing capabilities of the kinetochore to robustly attach chromosomes to dynamic microtubule tips. The human Ska complex and Ndc80 complex are outer-kinetochore components that bind microtubules and are required to fully stabilize kinetochore–microtubule attachments in vivo. While purified Ska complex tracks with disassembling microtubule tips, it remains unclear whether the Ska complex–microtubule interaction is sufficiently strong to make a significant contribution to kinetochore–microtubule coupling. Alternatively, Ska complex might affect kinetochore coupling indirectly, through recruitment of phosphoregulatory factors. Using optical tweezers, we show that the Ska complex itself bears load on microtubule tips, strengthens Ndc80 complex-based tip attachments, and increases the switching dynamics of the attached microtubule tips. Cross-linking mass spectrometry suggests the Ska complex directly binds Ndc80 complex through interactions between the Ska3 unstructured C-terminal region and the coiled-coil regions of each Ndc80 complex subunit. Deletion of the Ska complex microtubule-binding domain or the Ska3 C terminus prevents Ska complex from strengthening Ndc80 complex-based attachments. Together, our results indicate that the Ska complex can directly strengthen the kinetochore–microtubule interface and regulate microtubule tip dynamics by forming an additional connection between the Ndc80 complex and the microtubule.
机译:染色体的正确分离取决于动粒体的力承受能力,以将染色体牢固地附着在动态微管尖端上。人Ska复合物和Ndc80复合物是结合微管的外线粒体成分,是完全稳定体内的线粒体-微管附着所必需的。尽管纯化的Ska复合物具有可拆卸的微管尖端,但仍不清楚Ska复合物与微管之间的相互作用是否足够强,从而对动酶与微管的耦合起重要作用。另外,Ska复合物可能通过募集磷酸调节因子而间接影响线粒体偶联。使用光镊,我们显示Ska复合体本身在微管尖端上承受负荷,增强了基于Ndc80复合体的尖端附件,并增加了所连接的微管尖端的开关动力学。交联质谱表明,Ska复合物通过Ska3非结构化C末端区域与每个Ndc80复合物亚基的卷曲螺旋区域之间的相互作用直接结合Ndc80复合物。 Ska复合物微管结合域或Ska3 C末端的删除可防止Ska复合物加强基于Ndc80复合物的连接。总之,我们的结果表明,Ska复合物可以通过在Ndc80复合物和微管之间形成额外的连接,直接增强动粒-微管界面并调节微管尖端动力学。

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