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DT40细胞有丝分裂过程中CENP-T-Mis12复合物相互作用的分子细节及磷酸化调控

Molecular details and phosphoregulation of the CENP-T-Mis12 complex interaction during mitosis in DT40 cells.

作者信息

Takenoshita Yusuke, Hara Masatoshi, Nakagawa Reiko, Ariyoshi Mariko, Fukagawa Tatsuo

机构信息

Graduate School of Frontier Biosciences, Osaka University, Suita, Osaka 565-0871, Japan.

RIKEN Center for Biosystems Dynamics Research, Kobe, Hyogo 650-0047, Japan.

出版信息

iScience. 2024 Nov 1;27(12):111295. doi: 10.1016/j.isci.2024.111295. eCollection 2024 Dec 20.

Abstract

To establish bipolar attachments of microtubules to sister chromatids, an inner kinetochore subcomplex, the constitutive centromere-associated network (CCAN), is assembled on centromeric chromatin and recruits the microtubule-binding subcomplex called the KMN network. Since CCAN proteins CENP-C and CENP-T independently bind to the Mis12 complex (Mis12C) of KMN, it is difficult to evaluate the significance of each interaction in cells. Here, we demonstrate the molecular details of the CENP-T-Mis12C interaction using chicken DT40 cells lacking the CENP-C-Mis12C interaction. Using AlphaFold predictions combined with cell biological and biochemical analyses, we identified three binding surfaces of the CENP-T-Mis12C interaction, demonstrating that each interface is important for recruiting Mis12C to CENP-T in cells. This interaction, via three interaction surfaces, is cooperatively regulated by dual phosphorylation of Dsn1 (a Mis12C component) and CENP-T, ensuring a robust CENP-T-Mis12C interaction and proper mitotic progression. These findings deepen our understanding of kinetochore assembly in cells.

摘要

为了在微管与姐妹染色单体之间建立双极附着,一个位于动粒内部的亚复合体,即组成型着丝粒相关网络(CCAN),会在着丝粒染色质上组装,并招募名为KMN网络的微管结合亚复合体。由于CCAN蛋白CENP-C和CENP-T分别与KMN的Mis12复合体(Mis12C)结合,因此很难在细胞中评估每种相互作用的重要性。在此,我们利用缺乏CENP-C-Mis12C相互作用的鸡DT40细胞,展示了CENP-T-Mis12C相互作用的分子细节。通过结合AlphaFold预测与细胞生物学和生化分析,我们确定了CENP-T-Mis12C相互作用的三个结合表面,表明每个界面对于在细胞中将Mis12C招募到CENP-T上都很重要。这种通过三个相互作用表面的相互作用,受到Dsn1(Mis12C的一个组分)和CENP-T双重磷酸化的协同调节,确保了强大的CENP-T-Mis12C相互作用和正常的有丝分裂进程。这些发现加深了我们对细胞中动粒组装的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e59b/11612794/cecbf11572b6/fx1.jpg

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