Genomic and Epigenetic Foundations of Neocentromere Formation.

IF 8.7 1区 生物学 Q1 GENETICS & HEREDITY
Annual review of genetics Pub Date : 2021-11-23 Epub Date: 2021-09-08 DOI:10.1146/annurev-genet-071719-020924
Evon M DeBose-Scarlett, Beth A Sullivan
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引用次数: 12

Abstract

Centromeres are essential to genome inheritance, serving as the site of kinetochore assembly and coordinating chromosome segregation during cell division. Abnormal centromere function is associated with birth defects, infertility, and cancer. Normally, centromeres are assembled and maintained at the same chromosomal location. However, ectopic centromeres form spontaneously at new genomic locations and contribute to genome instability and developmental defects as well as to acquired and congenital human disease. Studies in model organisms have suggested that certain regions of the genome, including pericentromeres, heterochromatin, and regions of open chromatin or active transcription, support neocentromere activation. However, there is no universal mechanism that explains neocentromere formation. This review focuses on recent technological and intellectual advances in neocentromere research and proposes future areas of study. Understanding neocentromere biology will provide a better perspective on chromosome and genome organization and functional context for information generated from the Human Genome Project, ENCODE, and other large genomics consortia.

新着丝粒形成的基因组和表观遗传学基础。
着丝粒是基因组遗传的重要组成部分,是细胞分裂过程中着丝粒组装和协调染色体分离的场所。着丝粒功能异常与出生缺陷、不孕症和癌症有关。正常情况下,着丝粒是在同一染色体位置组装和维持的。然而,异位着丝粒在新的基因组位置自发形成,并导致基因组不稳定和发育缺陷以及获得性和先天性人类疾病。对模式生物的研究表明,基因组的某些区域,包括中心粒、异染色质、开放染色质或活性转录区域,支持新着丝粒的激活。然而,并没有普遍的机制来解释新着丝粒的形成。本文综述了新着丝粒研究的最新技术和知识进展,并提出了未来的研究方向。了解新着丝粒生物学将为人类基因组计划、ENCODE和其他大型基因组学联盟产生的信息提供更好的染色体和基因组组织和功能背景的视角。
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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来源期刊
Annual review of genetics
Annual review of genetics 生物-遗传学
CiteScore
18.30
自引率
0.90%
发文量
17
期刊介绍: The Annual Review of Genetics, published since 1967, comprehensively covers significant advancements in genetics. It encompasses various areas such as biochemical, behavioral, cell, and developmental genetics, evolutionary and population genetics, chromosome structure and transmission, gene function and expression, mutation and repair, genomics, immunogenetics, and other topics related to the genetics of viruses, bacteria, fungi, plants, animals, and humans.
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