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人类着丝粒DNA重复序列的完整性由着丝粒蛋白A、着丝粒蛋白C和着丝粒蛋白T保护。

Integrity of the human centromere DNA repeats is protected by CENP-A, CENP-C, and CENP-T.

作者信息

Giunta Simona, Funabiki Hironori

机构信息

Laboratory of Chromosome and Cell Biology, The Rockefeller University, New York, NY 10065

出版信息

Proc Natl Acad Sci U S A. 2017 Feb 21;114(8):1928-1933. doi: 10.1073/pnas.1615133114. Epub 2017 Feb 6.


DOI:10.1073/pnas.1615133114
PMID:28167779
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5338446/
Abstract

Centromeres are highly specialized chromatin domains that enable chromosome segregation and orchestrate faithful cell division. Human centromeres are composed of tandem arrays of α-satellite DNA, which spans up to several megabases. Little is known about the mechanisms that maintain integrity of the long arrays of α-satellite DNA repeats. Here, we monitored centromeric repeat stability in human cells using chromosome-orientation fluorescent in situ hybridization (CO-FISH). This assay detected aberrant centromeric CO-FISH patterns consistent with sister chromatid exchange at the frequency of 5% in primary tissue culture cells, whereas higher levels were seen in several cancer cell lines and during replicative senescence. To understand the mechanism(s) that maintains centromere integrity, we examined the contribution of the centromere-specific histone variant CENP-A and members of the constitutive centromere-associated network (CCAN), CENP-C, CENP-T, and CENP-W. Depletion of CENP-A and CCAN proteins led to an increase in centromere aberrations, whereas enhancing chromosome missegregation by alternative methods did not, suggesting that CENP-A and CCAN proteins help maintain centromere integrity independently of their role in chromosome segregation. Furthermore, superresolution imaging of centromeric CO-FISH using structured illumination microscopy implied that CENP-A protects α-satellite repeats from extensive rearrangements. Our study points toward the presence of a centromere-specific mechanism that actively maintains α-satellite repeat integrity during human cell proliferation.

摘要

着丝粒是高度特化的染色质结构域,可实现染色体分离并协调精确的细胞分裂。人类着丝粒由α-卫星DNA的串联阵列组成,其跨度可达数兆碱基。关于维持α-卫星DNA重复序列长阵列完整性的机制,我们知之甚少。在这里,我们使用染色体定向荧光原位杂交(CO-FISH)监测了人类细胞中的着丝粒重复序列稳定性。该检测方法在原代组织培养细胞中检测到与姐妹染色单体交换一致的异常着丝粒CO-FISH模式,频率为5%,而在几种癌细胞系和复制性衰老过程中观察到更高的水平。为了了解维持着丝粒完整性的机制,我们研究了着丝粒特异性组蛋白变体CENP-A以及组成型着丝粒相关网络(CCAN)的成员CENP-C、CENP-T和CENP-W的作用。CENP-A和CCAN蛋白的缺失导致着丝粒畸变增加,而通过其他方法增强染色体错分离则不会,这表明CENP-A和CCAN蛋白有助于维持着丝粒完整性,而与它们在染色体分离中的作用无关。此外,使用结构照明显微镜对着丝粒CO-FISH进行超分辨率成像表明,CENP-A可保护α-卫星重复序列免受广泛重排。我们的研究表明,在人类细胞增殖过程中存在一种着丝粒特异性机制,可积极维持α-卫星重复序列的完整性。

相似文献

[1]
Integrity of the human centromere DNA repeats is protected by CENP-A, CENP-C, and CENP-T.

Proc Natl Acad Sci U S A. 2017-2-21

[2]
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Mol Biol Cell. 2023-5-15

[3]
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Chromosome Res. 2011-4-12

[4]
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[5]
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[6]
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[7]
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[8]
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[9]
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[10]
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Genes Dis. 2025-4-22

[2]
Maternal CENP-C restores centromere symmetry in mammalian zygotes to ensure proper chromosome segregation.

bioRxiv. 2025-7-28

[3]
Centromeres drive and take a break.

Chromosome Res. 2025-8-4

[4]
Total whole-arm chromosome losses predict malignancy in human cancer.

Proc Natl Acad Sci U S A. 2025-5-6

[5]
PBRM1 directs PBAF to pericentromeres and protects centromere integrity.

Nat Commun. 2025-2-26

[6]
Fast sequence alignment for centromeres with RaMA.

Genome Res. 2025-5-2

[7]
The homologous recombination factors BRCA2 and PALB2 interplay with mismatch repair pathways to maintain centromere stability and cell viability.

Cell Rep. 2025-2-25

[8]
Centromere inactivation during aging can be rescued in human cells.

Mol Cell. 2025-2-20

[9]
Comparative analysis of predicted DNA secondary structures infers complex human centromere topology.

Am J Hum Genet. 2024-12-5

[10]
Cardiac cell senescence: molecular mechanisms, key proteins and therapeutic targets.

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本文引用的文献

[1]
Centromeric DNA replication reconstitution reveals DNA loops and ATR checkpoint suppression.

Nat Cell Biol. 2016-6

[2]
The CENP-L-N Complex Forms a Critical Node in an Integrated Meshwork of Interactions at the Centromere-Kinetochore Interface.

Mol Cell. 2015-12-17

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Nat Rev Mol Cell Biol. 2016-1

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Chromosome Res. 2015-9

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Chromosome Res. 2015-9

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