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CKAP5 通过调节微管-染色体附着稳定着丝粒处的 CENP-E。

CKAP5 stabilizes CENP-E at kinetochores by regulating microtubule-chromosome attachments.

机构信息

School of Biology, Indian Institute of Science Education and Research, Thiruvananthapuram, Vithura, Thiruvananthapuram, Kerala, 695551, India.

School of Mathematical and Computational Sciences, Indian Association for the Cultivation of Science, Jadavpur, Kolkata, 700032, India.

出版信息

EMBO Rep. 2024 Apr;25(4):1909-1935. doi: 10.1038/s44319-024-00106-9. Epub 2024 Feb 29.

Abstract

Stabilization of microtubule plus end-directed kinesin CENP-E at the metaphase kinetochores is important for chromosome alignment, but its mechanism remains unclear. Here, we show that CKAP5, a conserved microtubule plus tip protein, regulates CENP-E at kinetochores in human cells. Depletion of CKAP5 impairs CENP-E localization at kinetochores at the metaphase plate and results in increased kinetochore-microtubule stability and attachment errors. Erroneous attachments are also supported by computational modeling. Analysis of CKAP5 knockout cancer cells of multiple tissue origins shows that CKAP5 is preferentially essential in aneuploid, chromosomally unstable cells, and the sensitivity to CKAP5 depletion is correlated to that of CENP-E depletion. CKAP5 depletion leads to reduction in CENP-E-BubR1 interaction and the interaction is rescued by TOG4-TOG5 domain of CKAP5. The same domain can rescue CKAP5 depletion-induced CENP-E removal from the kinetochores. Interestingly, CKAP5 depletion facilitates recruitment of PP1 to the kinetochores and furthermore, a PP1 target site-specific CENP-E phospho-mimicking mutant gets stabilized at kinetochores in the CKAP5-depleted cells. Together, the results support a model in which CKAP5 controls mitotic chromosome attachment errors by stabilizing CENP-E at kinetochores and by regulating stability of the kinetochore-attached microtubules.

摘要

微管正端定向驱动蛋白 CENP-E 在中期动粒上的稳定对于染色体排列很重要,但它的机制尚不清楚。在这里,我们表明,保守的微管正端蛋白 CKAP5 调节人类细胞动粒上的 CENP-E。CKAP5 的耗竭会损害中期动粒板上的 CENP-E 定位,并导致动粒-微管稳定性和附着错误增加。计算模型也支持错误的附着。对来自多种组织来源的 CKAP5 敲除癌细胞的分析表明,CKAP5 在非整倍体、染色体不稳定的细胞中优先是必需的,对 CKAP5 耗竭的敏感性与 CENP-E 耗竭的敏感性相关。CKAP5 耗竭导致 CENP-E-BubR1 相互作用减少,CKAP5 的 TOG4-TOG5 结构域可挽救该相互作用。相同的结构域可以挽救 CKAP5 耗竭诱导的 CENP-E 从动粒上的去除。有趣的是,CKAP5 耗竭促进了 PP1 向动粒的募集,此外,CKAP5 耗竭细胞中 PP1 靶向的特定 CENP-E 磷酸模拟突变体能稳定地定位于动粒上。总之,这些结果支持了一种模型,即 CKAP5 通过稳定动粒上的 CENP-E 并调节动粒附着的微管稳定性来控制有丝分裂染色体附着错误。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c43/11014917/35b87f613434/44319_2024_106_Fig1_HTML.jpg

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