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转座元件。

Transposable elements.

机构信息

Centre for Ecology and Conservation, University of Exeter, Cornwall Campus, Cornwall TR10 9FE, UK.

Université Paris-Saclay, CNRS, IRD, UMR Evolution, Génomes, Comportement et Ecologie, Gif-sur-Yvette 91198, France.

出版信息

Curr Biol. 2022 Sep 12;32(17):R904-R909. doi: 10.1016/j.cub.2022.07.044.

Abstract

Transposable elements are known by many names, including 'transposons', 'interspersed repeats', 'selfish genetic elements', 'jumping genes', and 'parasitic DNA', but here we will refer to them simply as transposable elements. Many biologists will have heard of transposable elements and their ability to transpose (change position) within the genome. But fewer may be aware of their varied influences on host biology, including contributions to the evolution of diverse host traits such as internal gestation, memory, colouration, and adaptive immunity. Transposable elements are a near ubiquitous feature of eukaryotic genomes, and they often comprise a substantial proportion of total genomic content. Consequently, transposable element genes are considered among the most abundant coding sequences in nature. Recent advances in genome sequencing have ushered in a golden age for transposable-element research, providing opportunities to greatly improve our understanding of the effects of transposable elements on host evolution and disease. However, our ability to detect and analyse transposable elements still faces significant challenges, impairing efforts to decipher their evolution, characterise their diversity, and elucidate their myriad host influences. Below, we summarise key aspects of transposable element biology in eukaryotes and discuss major outstanding research questions.

摘要

转座元件有许多名称,包括“转座子”、“散布重复序列”、“自私遗传元件”、“跳跃基因”和“寄生 DNA”,但在这里我们将简单地称之为转座元件。许多生物学家都听说过转座元件及其在基因组中易位(改变位置)的能力。但可能较少有人意识到它们对宿主生物学的多种影响,包括对宿主多样化特征(如内部孕育、记忆、着色和适应性免疫)进化的贡献。转座元件是真核生物基因组的一个近乎普遍的特征,它们通常构成总基因组含量的很大一部分。因此,转座元件基因被认为是自然界中最丰富的编码序列之一。基因组测序的最新进展开创了转座元件研究的黄金时代,为我们大大提高对转座元件对宿主进化和疾病影响的理解提供了机会。然而,我们检测和分析转座元件的能力仍然面临重大挑战,这阻碍了我们对其进化、多样性特征以及众多宿主影响的破译。在下面,我们总结了真核生物中转座元件生物学的关键方面,并讨论了主要的未解决研究问题。

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