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着丝粒区域 CENP-C cupin 结构域揭示了其独特的二聚化模式和内口袋募集功能。

Structures of CENP-C cupin domains at regional centromeres reveal unique patterns of dimerization and recruitment functions for the inner pocket.

机构信息

Department of Biological Chemistry, University of Michigan Medical School, Ann Arbor, Michigan 48109.

Program in Cellular and Molecular Biology, University of Michigan Medical School, Ann Arbor, Michigan 48109.

出版信息

J Biol Chem. 2019 Sep 20;294(38):14119-14134. doi: 10.1074/jbc.RA119.008464. Epub 2019 Jul 31.

DOI:10.1074/jbc.RA119.008464
PMID:31366733
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6755791/
Abstract

The successful assembly and regulation of the kinetochore are critical for the equal and accurate segregation of genetic material during the cell cycle. CENP-C (centromere protein C), a conserved inner kinetochore component, has been broadly characterized as a scaffolding protein and is required for the recruitment of multiple kinetochore proteins to the centromere. At its C terminus, CENP-C harbors a conserved cupin domain that has an established role in protein dimerization. Although the crystal structure of the Mif2 cupin domain has been determined, centromeric organization and kinetochore composition vary greatly between (point centromere) and other eukaryotes (regional centromere). Therefore, whether the structural and functional role of the cupin domain is conserved throughout evolution requires investigation. Here, we report the crystal structures of the and CENP-C cupin domains at 2.52 and 1.81 Å resolutions, respectively. Although the central jelly roll architecture is conserved among the three determined CENP-C cupin domain structures, the cupin domains from organisms with regional centromeres contain additional structural features that aid in dimerization. Moreover, we found that the Cnp3 jelly roll fold harbors an inner binding pocket that is used to recruit the meiosis-specific protein Moa1. In summary, our results unveil the evolutionarily conserved and unique features of the CENP-C cupin domain and uncover the mechanism by which it functions as a recruitment factor.

摘要

着丝粒的成功组装和调控对于细胞周期中遗传物质的均等和准确分离至关重要。CENP-C(着丝粒蛋白 C)是一种保守的内核着丝粒成分,广泛被描述为支架蛋白,并且对于将多个着丝粒蛋白招募到着丝粒是必需的。在其 C 末端,CENP-C 含有一个保守的 cupin 结构域,该结构域在蛋白质二聚化中具有既定的作用。尽管已经确定了 Mif2 cupin 结构域的晶体结构,但着丝粒的组织和着丝粒组成在 (点着丝粒)和其他真核生物(区域着丝粒)之间差异很大。因此,cupin 结构域的结构和功能作用是否在进化过程中保守需要进行研究。在这里,我们报告了 和 CENP-C cupin 结构域的晶体结构,分辨率分别为 2.52 和 1.81 Å。尽管三个确定的 CENP-C cupin 结构域结构中的中央果冻卷结构是保守的,但来自具有区域着丝粒的生物体的 cupin 结构域含有辅助二聚化的其他结构特征。此外,我们发现 Cnp3 果冻卷折叠具有一个内部结合口袋,用于招募减数分裂特异性蛋白 Moa1。总之,我们的结果揭示了 CENP-C cupin 结构域的进化保守和独特特征,并揭示了其作为招募因子的作用机制。

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本文引用的文献

1
The fission yeast nucleoporin Alm1 is required for proteasomal degradation of kinetochore components.裂殖酵母核孔蛋白Alm1是动粒组件蛋白酶体降解所必需的。
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The CENP-L-N Complex Forms a Critical Node in an Integrated Meshwork of Interactions at the Centromere-Kinetochore Interface.CENP-L-N复合体在着丝粒-动粒界面的相互作用整合网络中形成关键节点。
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The molecular basis for centromere identity and function.着丝粒身份和功能的分子基础。
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Dynamic changes in CCAN organization through CENP-C during cell-cycle progression.在细胞周期进程中,着丝粒相关网络(CCAN)组织通过着丝粒蛋白C(CENP-C)发生动态变化。
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CENP-C is a blueprint for constitutive centromere-associated network assembly within human kinetochores.着丝粒蛋白C是人类动粒内组成型着丝粒相关网络组装的蓝图。
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Eic1 links Mis18 with the CCAN/Mis6/Ctf19 complex to promote CENP-A assembly.Eic1 将 Mis18 与 CCAN/Mis6/Ctf19 复合物连接起来,以促进 CENP-A 的组装。
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