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必要的“垃圾”:转座元件的新功能

The necessary junk: new functions for transposable elements.

作者信息

Muotri Alysson R, Marchetto Maria C N, Coufal Nicole G, Gage Fred H

机构信息

1-Laboratory of Genetics, The Salk Institute for Biological Studies, 10010 North Torrey Pines Road, La Jolla, CA 92037, USA.

出版信息

Hum Mol Genet. 2007 Oct 15;16 Spec No. 2:R159-67. doi: 10.1093/hmg/ddm196.

Abstract

Transposable elements have been shaping the genome throughout evolution, contributing to the creation of new genes and sophisticated regulatory network systems. Today, most of genomes (animals and plants) allow the expression and accommodate transposition of a few transposon families. The potential genetic impact of this small fraction of mobile elements should not be underestimated. Although new insertions that happen in germ cells are likely to be passed to the next generation, mobilization in pluripotent embryonic stem cells or in somatic cells may contribute to the differences observed in genetic makeup and epigenetic gene regulation during development at the cellular level. The fact that these elements are still active, generating innovative ways to alter gene expression and genomic structure, suggests that the cellular genome is not static or deterministic but rather dynamic. In this short review, we collect a set of recent observations that point to a new appreciation of transposable elements as a source of genetic variation.

摘要

在整个进化过程中,转座元件一直在塑造基因组,促进新基因的产生和复杂调控网络系统的形成。如今,大多数基因组(动物和植物)允许少数转座子家族的表达并容纳其转座。这一小部分可移动元件的潜在遗传影响不容小觑。虽然发生在生殖细胞中的新插入可能会传递给下一代,但多能胚胎干细胞或体细胞中的转座可能导致在发育过程中细胞水平上观察到的基因组成和表观遗传基因调控差异。这些元件仍然活跃,产生改变基因表达和基因组结构的创新方式,这一事实表明细胞基因组不是静态的或确定性的,而是动态的。在这篇简短的综述中,我们收集了一系列近期观察结果,这些结果表明对转座元件作为遗传变异来源有了新的认识。

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