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转座元件:基因组创新、染色体多样性与着丝粒冲突

Transposable elements: genome innovation, chromosome diversity, and centromere conflict.

作者信息

Klein Savannah J, O'Neill Rachel J

机构信息

Institute for Systems Genomics and Department of Molecular and Cell Biology, University of Connecticut, Storrs, CT, 06269, USA.

出版信息

Chromosome Res. 2018 Mar;26(1-2):5-23. doi: 10.1007/s10577-017-9569-5. Epub 2018 Jan 13.

Abstract

Although it was nearly 70 years ago when transposable elements (TEs) were first discovered "jumping" from one genomic location to another, TEs are now recognized as contributors to genomic innovations as well as genome instability across a wide variety of species. In this review, we illustrate the ways in which active TEs, specifically retroelements, can create novel chromosome rearrangements and impact gene expression, leading to disease in some cases and species-specific diversity in others. We explore the ways in which eukaryotic genomes have evolved defense mechanisms to temper TE activity and the ways in which TEs continue to influence genome structure despite being rendered transpositionally inactive. Finally, we focus on the role of TEs in the establishment, maintenance, and stabilization of critical, yet rapidly evolving, chromosome features: eukaryotic centromeres. Across centromeres, specific types of TEs participate in genomic conflict, a balancing act wherein they are actively inserting into centromeric domains yet are harnessed for the recruitment of centromeric histones and potentially new centromere formation.

摘要

尽管转座元件(TEs)首次被发现“跳跃”于基因组的一个位置到另一个位置已近70年,但现在TEs被认为是基因组创新以及各种物种基因组不稳定的促成因素。在这篇综述中,我们阐述了活跃的TEs,特别是逆转录元件,如何能够产生新的染色体重排并影响基因表达,在某些情况下导致疾病,而在其他情况下导致物种特异性多样性。我们探讨了真核生物基因组进化出防御机制来调节TE活性的方式,以及TEs尽管在转座方面变得不活跃但仍继续影响基因组结构的方式。最后,我们关注TEs在关键但快速进化的染色体特征——真核生物着丝粒的建立、维持和稳定中的作用。在整个着丝粒中,特定类型的TEs参与基因组冲突,这是一种平衡行为,其中它们积极插入着丝粒区域,但也被用于募集着丝粒组蛋白并可能形成新的着丝粒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/03c2/5857280/493f554230d6/10577_2017_9569_Fig1_HTML.jpg

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