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蛋白酶解作用有助于酵母Cse4/CENP-A组蛋白H3变体在着丝粒的特异性定位。

Proteolysis contributes to the exclusive centromere localization of the yeast Cse4/CENP-A histone H3 variant.

作者信息

Collins Kimberly A, Furuyama Suzanne, Biggins Sue

机构信息

Division of Basic Sciences, Fred Hutchinson Cancer Research Center, Post Office Box 19024, 1100 Fairview Avenue North, Seattle, WA 98040, USA.

出版信息

Curr Biol. 2004 Nov 9;14(21):1968-72. doi: 10.1016/j.cub.2004.10.024.

Abstract

Kinetochores are the specialized protein structures that form on centromeric DNA and direct chromosome segregation. It is critical that all chromosomes assemble a single kinetochore every cell cycle. One hallmark of all eukaryotic kinetochores is CENP-A, an essential centromeric histone H3 (CenH3) variant. Overexpression of CENP-A causes mislocalization to euchromatin, which could lead to deleterious consequences because CENP-A overexpression is associated with colorectal cancer . Although CENP-A protein levels are important for genomic stability, little is known about the mechanisms of CenH3 regulation. Here, we show that the levels of the budding yeast CenH3, Cse4, are regulated by ubiquitin-proteasome-mediated proteolysis. Because mutation of all Cse4 lysine residues did not completely stabilize the protein, we isolated a dominant lethal mutant, CSE4-351, that was stable. The Cse4-351 protein localized to euchromatin, suggesting that proteolysis prevents CenH3 euchromatic localization. When wild-type Cse4 was fused to a degron signal, the soluble Cse4 protein was rapidly degraded, but the centromere bound Cse4 was stable, indicating that centromere localization protects Cse4 from degradation. Taken together, these data identify proteolysis as one mechanism that contributes to the restricted centromere localization of the yeast CenH3.

摘要

动粒是在着丝粒DNA上形成并指导染色体分离的特殊蛋白质结构。在每个细胞周期中,所有染色体都组装一个单一的动粒,这一点至关重要。所有真核生物动粒的一个标志是CENP-A,它是一种必需的着丝粒组蛋白H3(CenH3)变体。CENP-A的过表达会导致其错误定位于常染色质,这可能会导致有害后果,因为CENP-A过表达与结直肠癌有关。尽管CENP-A蛋白水平对基因组稳定性很重要,但对于CenH3的调控机制知之甚少。在这里,我们表明,芽殖酵母CenH3即Cse4的水平受泛素-蛋白酶体介导的蛋白水解作用调控。由于所有Cse4赖氨酸残基的突变并未完全使该蛋白稳定,我们分离出了一个稳定的显性致死突变体CSE4-351。Cse4-351蛋白定位于常染色质,这表明蛋白水解作用可防止CenH3定位于常染色质。当野生型Cse4与一个降解信号融合时,可溶性Cse4蛋白会迅速降解,但着丝粒结合的Cse4是稳定的,这表明着丝粒定位可保护Cse4不被降解。综上所述,这些数据表明蛋白水解作用是导致酵母CenH3在着丝粒定位受限的一种机制。

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