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转录噪声和适应作为细菌 sRNA 的来源。

Transcriptional noise and exaptation as sources for bacterial sRNAs.

机构信息

Biomolecular Interactions Centre, School of Biological Sciences, University of Canterbury, Christchurch, New Zealand

Department of Biochemistry, Otago University, Dunedin, New Zealand.

出版信息

Biochem Soc Trans. 2019 Apr 30;47(2):527-539. doi: 10.1042/BST20180171. Epub 2019 Mar 5.

Abstract

Understanding how new genes originate and integrate into cellular networks is key to understanding evolution. Bacteria present unique opportunities for both the natural history and experimental study of gene origins, due to their large effective population sizes, rapid generation times, and ease of genetic manipulation. Bacterial small non-coding RNAs (sRNAs), in particular, many of which operate through a simple antisense regulatory logic, may serve as tractable models for exploring processes of gene origin and adaptation. Understanding how and on what timescales these regulatory molecules arise has important implications for understanding the evolution of bacterial regulatory networks, in particular, for the design of comparative studies of sRNA function. Here, we introduce relevant concepts from evolutionary biology and review recent work that has begun to shed light on the timescales and processes through which non-functional transcriptional noise is co-opted to provide regulatory functions. We explore possible scenarios for sRNA origin, focusing on the co-option, or exaptation, of existing genomic structures which may provide protected spaces for sRNA evolution.

摘要

了解新基因的起源和整合到细胞网络中是理解进化的关键。由于细菌具有较大的有效种群大小、快速的世代时间和易于遗传操作,因此它们为基因起源的自然历史和实验研究提供了独特的机会。细菌中的小非编码 RNA(sRNA),特别是其中许多通过简单的反义调控逻辑发挥作用的 sRNA,可能成为探索基因起源和适应过程的可行模型。了解这些调控分子是如何以及在什么时间尺度上产生的,对于理解细菌调控网络的进化具有重要意义,特别是对于 sRNA 功能的比较研究的设计具有重要意义。在这里,我们将介绍进化生物学中的相关概念,并回顾最近的研究工作,这些研究工作开始揭示非功能转录噪声是如何被共同选择来提供调节功能的时间尺度和过程。我们探讨了 sRNA 起源的可能情况,重点关注现有基因组结构的共同选择或适应,这些结构可能为 sRNA 的进化提供了保护空间。

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