从垃圾DNA到基因组宝藏:转座因子DNA、RNA和蛋白质在哺乳动物发育和疾病中的影响。

IF 4.8 2区 生物学 Q1 CELL BIOLOGY
Ten D Li, Katelyn Toohill, Andrew J Modzelewski
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引用次数: 0

摘要

转座因子(te)劫持了细胞机制,在宿主基因组中复制和传播。目前,te在真核生物基因组中占有重要地位,在基因组进化中发挥着重要作用,既推动了物种形成,又为遗传创新提供了原料。芭芭拉·麦克林托克对这些“跳跃基因”的开创性工作为现代TE研究奠定了基础;然而,由于长期以来人们认为te是“垃圾”或寄生DNA元素,她将te作为“控制元素”的范式转换理论最初遭到了拒绝。从历史上看,te的高度重复性使得识别和研究功能具有挑战性。然而,基因组学的最新进展大大加快了我们对TEs的理解。尽管它们有可能引起插入突变和疾病,但许多转座元件已被宿主基因组所选择,以促进基因调控和发育。与通常以DNA形式开始的蛋白质编码基因不同,TE可以作为顺式调控DNA、功能性RNA发挥作用,在极少数情况下,还可以作为驯化蛋白和TE与宿主基因之间的融合事件发挥作用。在快速发展的技术的推动下,te在发展和疾病中的作用比以往任何时候都更快地被发现,使当前和未来的工作成为芭芭拉麦克林托克开创性遗产的令人兴奋的延续。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

From Junk DNA to Genomic Treasure: Impacts of Transposable Element DNA, RNA, and Protein in Mammalian Development and Disease.

From Junk DNA to Genomic Treasure: Impacts of Transposable Element DNA, RNA, and Protein in Mammalian Development and Disease.

From Junk DNA to Genomic Treasure: Impacts of Transposable Element DNA, RNA, and Protein in Mammalian Development and Disease.

From Junk DNA to Genomic Treasure: Impacts of Transposable Element DNA, RNA, and Protein in Mammalian Development and Disease.

Transposable elements (TEs) have hijacked cellular machineries to replicate and spread throughout host genomes. TEs now make up a significant portion of eukaryotic genomes and play notable roles in genomic evolution, driving both speciation and providing raw material for genetic innovation. Barbara McClintock's pioneering work on these "jumping genes" laid the foundation for modern TE research; however, her paradigm-shifting theories in which TEs act as "controlling elements" were initially rejected due to the long-held belief that TEs were "junk" or parasitic DNA elements. Historically, the highly repetitive nature of TEs made it challenging to both identify and investigate functions. However, recent advances in genomics have greatly accelerated our understanding of TEs. Despite their potential to cause insertional mutagenesis and disease, many transposable elements have been co-opted by host genomes to contribute to gene regulation and development. In contrast to protein-coding genes that typically begin their journey as DNA, are transcribed into RNA, and reach their ultimate functional form as proteins, TEs can function as cis-regulatory DNA, functional RNA, and in rare cases, domesticated proteins and fusion events between TE and host genes. Driven by rapidly advancing technologies, the roles of TEs in both development and disease are being uncovered faster than ever, making current and future work an exciting continuation of Barbara McClintock's groundbreaking legacy.

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来源期刊
CiteScore
14.80
自引率
4.10%
发文量
67
审稿时长
6-12 weeks
期刊介绍: WIREs RNA aims to provide comprehensive, up-to-date, and coherent coverage of this interesting and growing field, providing a framework for both RNA experts and interdisciplinary researchers to not only gain perspective in areas of RNA biology, but to generate new insights and applications as well. Major topics to be covered are: RNA Structure and Dynamics; RNA Evolution and Genomics; RNA-Based Catalysis; RNA Interactions with Proteins and Other Molecules; Translation; RNA Processing; RNA Export/Localization; RNA Turnover and Surveillance; Regulatory RNAs/RNAi/Riboswitches; RNA in Disease and Development; and RNA Methods.
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