协调着丝粒核小体的特定组装。

Ewelina Zasadzińska, Daniel R Foltz
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引用次数: 25

摘要

着丝粒是在大多数真核生物中通过结合着丝粒特异性核小体而定义的染色体位点,其中标准组蛋白H3变体被着丝粒蛋白a (CENP-A)取代。因此,着丝粒核小体的组装和繁殖对于维持着丝粒鉴定和确保基因组稳定性至关重要。着丝粒直接染色体分离(在有丝分裂和减数分裂期间),通过在整个细胞周期中招募组成着丝粒相关的蛋白质网络,从而在有丝分裂期间招募着丝粒。人类着丝粒特异性核小体的组装需要专用的CENP-A伴侣HJURP和Mis18复合体将新CENP-A的沉积偶联到已有着丝粒的位置,这对于维持着丝粒的身份至关重要。人类CENP-A沉积特异性发生在G1早期,进入预先存在的染色质,并且一些额外的染色质相关复合物调节CENP-A核小体沉积和稳定性。在这里,我们回顾了目前关于不同物种中新的CENP-A核小体如何在现有着丝粒上选择性组装以及如何控制这一过程以确保着丝粒稳定的表观遗传的知识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Orchestrating the Specific Assembly of Centromeric Nucleosomes.

Centromeres are chromosomal loci that are defined epigenetically in most eukaryotes by incorporation of a centromere-specific nucleosome in which the canonical histone H3 variant is replaced by Centromere Protein A (CENP-A). Therefore, the assembly and propagation of centromeric nucleosomes are critical for maintaining centromere identify and ensuring genomic stability. Centromeres direct chromosome segregation (during mitosis and meiosis) by recruiting the constitutive centromere-associated network of proteins throughout the cell cycle that in turn recruits the kinetochore during mitosis. Assembly of centromere-specific nucleosomes in humans requires the dedicated CENP-A chaperone HJURP, and the Mis18 complex to couple the deposition of new CENP-A to the site of the pre-existing centromere, which is essential for maintaining centromere identity. Human CENP-A deposition occurs specifically in early G1, into pre-existing chromatin, and several additional chromatin-associated complexes regulate CENP-A nucleosome deposition and stability. Here we review the current knowledge on how new CENP-A nucleosomes are assembled selectively at the existing centromere in different species and how this process is controlled to ensure stable epigenetic inheritance of the centromere.

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来源期刊
CiteScore
3.30
自引率
0.00%
发文量
7
期刊介绍: Molecular biology has been providing an overwhelming amount of data on the structural components and molecular machineries of the cell and its organelles and the complexity of intra- and intercellular communication. The molecular basis of hereditary and acquired diseases is beginning to be unravelled, and profound new insights into development and evolutionary biology have been gained from molecular approaches. Progress in Molecular and Subcellular Biology summarises the most recent developments in this fascinating area of biology.
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