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着丝粒与癌症:解析染色体不稳定性与肿瘤发生的关联。

Centromeres in cancer: Unraveling the link between chromosomal instability and tumorigenesis.

机构信息

Department of Cellular and Molecular Biology, Faculty of Biological Sciences, Kharazmi University, Tehran, Iran.

School of Medicine, Tehran University of Medical Sciences, Tehran, Iran.

出版信息

Med Oncol. 2024 Oct 1;41(11):254. doi: 10.1007/s12032-024-02524-0.

DOI:10.1007/s12032-024-02524-0
PMID:39352464
Abstract

Centromeres are critical structures involved in chromosome segregation, maintaining genomic stability, and facilitating the accurate transmission of genetic information. They are key in coordinating the assembly and help keep the correct structure, location, and function of the kinetochore, a proteinaceous structure vital for ensuring proper chromosome segregation during cell division. Abnormalities in centromere structure can lead to aneuploidy or chromosomal instability, which have been implicated in various diseases, including cancer. Accordingly, abnormalities in centromeres, such as structural rearrangements and dysregulation of centromere-associated proteins, disrupt gene function, leading to uncontrolled cell growth and tumor progression. For instance, altered expression of CENP-A, CENP-E, and others such as BUB1, BUBR1, MAD1, and INCENP, have been shown to ascribe to centromere over-amplification, chromosome missegregation, aneuploidy, and chromosomal instability; this, in turn, can culminate in tumor progression. These centromere abnormalities also promoted tumor heterogeneity by generating genetically diverse cell populations within tumors. Advanced techniques like fluorescence in situ hybridization (FISH) and chromosomal microarray analysis are crucial for detecting centromere abnormalities, enabling accurate cancer classification and tailored treatment strategies. Researchers are exploring strategies to disrupt centromere-associated proteins for targeted cancer therapies. Thus, this review explores centromere abnormalities in cancer, their molecular mechanisms, diagnostic implications, and therapeutic targeting. It aims to advance our understanding of centromeres' role in cancer and develop advanced diagnostic tools and targeted therapies for improved cancer management and treatment.

摘要

着丝粒是参与染色体分离、维持基因组稳定性和促进遗传信息准确传递的关键结构。它们在协调组装方面起着重要作用,并有助于保持动粒的正确结构、位置和功能,而动粒是确保细胞分裂过程中染色体正确分离的重要蛋白质结构。着丝粒结构的异常可导致非整倍体或染色体不稳定,这与各种疾病有关,包括癌症。因此,着丝粒异常,如结构重排和着丝粒相关蛋白的失调,会破坏基因功能,导致细胞失控生长和肿瘤进展。例如,CENP-A、CENP-E 等的表达改变以及 BUB1、BUBR1、MAD1 和 INCENP 等的表达改变,被认为导致着丝粒过度扩增、染色体错误分离、非整倍体和染色体不稳定;这反过来又会导致肿瘤进展。这些着丝粒异常还通过在肿瘤内产生遗传上不同的细胞群体来促进肿瘤异质性。荧光原位杂交 (FISH) 和染色体微阵列分析等先进技术对于检测着丝粒异常至关重要,可实现癌症的准确分类和针对性治疗策略。研究人员正在探索破坏着丝粒相关蛋白的策略,以用于靶向癌症治疗。因此,本综述探讨了癌症中的着丝粒异常、它们的分子机制、诊断意义和治疗靶向。旨在提高我们对着丝粒在癌症中的作用的理解,并开发先进的诊断工具和靶向治疗方法,以改善癌症管理和治疗。

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Centromeres in cancer: Unraveling the link between chromosomal instability and tumorigenesis.着丝粒与癌症:解析染色体不稳定性与肿瘤发生的关联。
Med Oncol. 2024 Oct 1;41(11):254. doi: 10.1007/s12032-024-02524-0.
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Guarding the Genome: CENP-A-Chromatin in Health and Cancer.守护基因组:健康与癌症中的着丝粒蛋白 A-染色质。
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Mislocalization of centromeric histone H3 variant CENP-A contributes to chromosomal instability (CIN) in human cells.着丝粒组蛋白H3变体CENP-A的错误定位会导致人类细胞中的染色体不稳定(CIN)。
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Loss of BubR1 acetylation provokes replication stress and leads to complex chromosomal rearrangements.BubR1 乙酰化的丧失会引发复制应激,导致复杂的染色体重排。
FEBS J. 2021 Oct;288(20):5925-5942. doi: 10.1111/febs.15912. Epub 2021 May 21.
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Human chromosome-specific aneuploidy is influenced by DNA-dependent centromeric features.人类染色体的非整倍性受 DNA 依赖性着丝粒特征的影响。
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Epigenetics as an Evolutionary Tool for Centromere Flexibility.表观遗传学作为一种用于着丝粒灵活性的进化工具。
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Integrity of the human centromere DNA repeats is protected by CENP-A, CENP-C, and CENP-T.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。
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Targeted assembly of ectopic kinetochores to induce chromosome-specific segmental aneuploidies.靶向组装异位着丝粒以诱导染色体特异性片段非整倍体。
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Centromere protein H is up-regulated in primary human colorectal cancer and its overexpression induces aneuploidy.着丝粒蛋白H在原发性人类结直肠癌中上调,其过表达诱导非整倍体。
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CENP-A chromatin prevents replication stress at centromeres to avoid structural aneuploidy.着丝粒 CENP-A 染色质可防止着丝粒处的复制应激,从而避免结构非整倍体。
Proc Natl Acad Sci U S A. 2021 Mar 9;118(10). doi: 10.1073/pnas.2015634118.

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本文引用的文献

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Understanding the unique mechanism of ferroptosis: a promising therapeutic target.了解铁死亡的独特机制:一个有前景的治疗靶点。
Front Cell Dev Biol. 2024 Mar 18;11:1329147. doi: 10.3389/fcell.2023.1329147. eCollection 2023.
2
Centromere structure and function: lessons from Drosophila.着丝粒结构与功能:来自果蝇的启示。
Genetics. 2023 Dec 6;225(4). doi: 10.1093/genetics/iyad170.
3
R-Loops in Genome Instability and Cancer.基因组不稳定与癌症中的R环
急性髓系白血病中的XPO1/输出蛋白1;生物学特性与治疗靶点
Biomolecules. 2025 Jan 24;15(2):175. doi: 10.3390/biom15020175.
Cancers (Basel). 2023 Oct 14;15(20):4986. doi: 10.3390/cancers15204986.
4
Emerging roles of DNA repair factors in the stability of centromeres.DNA 修复因子在着丝粒稳定性中的新兴作用。
Semin Cell Dev Biol. 2024 Mar 15;156:121-129. doi: 10.1016/j.semcdb.2023.10.001. Epub 2023 Oct 16.
5
Molecular landscape and functional characterization of centrosome amplification in ovarian cancer.卵巢癌中中心体扩增的分子特征与功能研究
Nat Commun. 2023 Oct 16;14(1):6505. doi: 10.1038/s41467-023-41840-3.
6
An updated view of the kinetochore architecture.动粒结构的最新观点。
Trends Genet. 2023 Dec;39(12):941-953. doi: 10.1016/j.tig.2023.09.003. Epub 2023 Sep 27.
7
Disentangling the roles of aneuploidy, chromosomal instability and tumour heterogeneity in developing resistance to cancer therapies.解析非整倍体、染色体不稳定性和肿瘤异质性在癌症治疗耐药性发展中的作用。
Chromosome Res. 2023 Sep 18;31(4):28. doi: 10.1007/s10577-023-09737-5.
8
How chromosomal translocations arise to cause cancer: Gene proximity, -splicing, and DNA end joining.染色体易位如何引发癌症:基因 proximity、剪接和DNA末端连接 。 注:这里“proximity”原文有误,可能是“promiscuous”(混乱的、不规则的),若按此修正后译文为:染色体易位如何引发癌症:基因的混乱剪接和DNA末端连接 。
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Holocentromeres can consist of merely a few megabase-sized satellite arrays.全着丝粒可以仅仅由少数几个兆碱基大小的卫星阵列组成。
Nat Commun. 2023 Jun 13;14(1):3502. doi: 10.1038/s41467-023-38922-7.
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Overexpressed kinetochore genes are used by cancer cells as genome destabilizers and transformation catalysts.过表达的动粒基因被癌细胞用作基因组不稳定因素和转化催化剂。
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