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哺乳动物生殖细胞中的转座元件:舒适的栖息地还是致命的陷阱?

Transposable elements in the mammalian germline: a comfortable niche or a deadly trap?

机构信息

Inserm U934/UMR3215, Institut Curie, Paris, France.

出版信息

Heredity (Edinb). 2010 Jul;105(1):92-104. doi: 10.1038/hdy.2010.53. Epub 2010 May 5.

Abstract

Retrotransposable elements comprise around 50% of the mammalian genome. Their activity represents a constant threat to the host and has prompted the development of adaptive control mechanisms to protect genome architecture and function. To ensure their propagation, retrotransposons have to mobilize in cells destined for the next generation. Accordingly, these elements are particularly well suited to transcriptional networks associated with pluripotent and germinal states in mammals. The relaxation of epigenetic control that occurs in the early developing germline constitutes a dangerous window in which retrotransposons can escape from host restraint and massively expand. What could be observed as risky behavior may turn out to be an insidious strategy developed by germ cells to sense retrotransposons and hold them back in check. Herein, we review recent insights that have provided a detailed picture of the defense mechanisms that concur toward retrotransposon silencing in mammalian genomes, and in particular in the germline. In this lineage, retrotransposons are hit at multiple stages of their life cycle, through transcriptional repression, RNA degradation and translational control. An organized cross-talk between PIWI-interacting small RNAs (piRNAs) and various nuclear and cytoplasmic accessories provides this potent and multi-layered response to retrotransposon unleashing in early germ cells.

摘要

逆转录转座子约占哺乳动物基因组的 50%。它们的活性对宿主构成了持续的威胁,并促使宿主产生适应性的控制机制来保护基因组的结构和功能。为了确保它们的传播,逆转录转座子必须在细胞中移动,这些细胞将被用于下一代。因此,这些元件特别适合与哺乳动物多能性和生殖状态相关的转录网络。在早期发育的生殖细胞中发生的表观遗传控制的放松,构成了一个危险的窗口,在此期间,逆转录转座子可以逃脱宿主的约束并大量扩张。看似危险的行为可能是生殖细胞用来感知逆转录转座子并阻止它们失控的一种阴险策略。在此,我们综述了最近的研究进展,这些进展提供了一幅详细的画面,描绘了在哺乳动物基因组中,特别是在生殖系中,共同作用的逆转录转座子沉默的防御机制。在这个谱系中,逆转录转座子在其生命周期的多个阶段受到攻击,包括转录抑制、RNA 降解和翻译控制。PIWI 相互作用的小 RNA (piRNA) 与各种核和细胞质附属物之间的有组织的串扰为早期生殖细胞中逆转录转座子的释放提供了这种强大的多层次反应。

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