100多年的相位变化:首要的细菌下注对冲现象。

IF 2.6 4区 生物学 Q3 MICROBIOLOGY
Christopher D Bayliss, Jack L Clark, Marjan W van der Woude
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引用次数: 0

摘要

鞭毛沙门氏菌变异表达的随机可逆开关是由Andrewes在1922年首次描述的。随后的研究发现,这种现象在细菌物种中广泛存在,并控制了细菌与宿主相互作用的主要决定因素的表达。潜在的机制直到20世纪70年代/ 80年代才被发现,但被发现包括DNA过程(即DNA滑移和重组)和DNA修饰(即DNA甲基化)的内在方面。尽管历史悠久,但随着相位变量库扩展到新的生物体,以及对已知位点和开关机制的功能的新见解,发现正在进行中。其中一些发现有些争议,因为“PV”一词的应用没有解决这一现象的关键方面,例如突变或表观遗传变化是否可逆,是否在选择之前产生。光伏研究的另一个“缺失”的方面是这些自适应开关在现实世界中的影响。这篇综述提供了PV发现的历史时间线、当前最先进的、有争议的相位变量位点分类方面的观点,以及这种现象可能“缺失”的现实世界效应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
100+ years of phase variation: the premier bacterial bet-hedging phenomenon.

Stochastic, reversible switches in the expression of Salmonella flagella variants were first described by Andrewes in 1922. Termed phase variation (PV), subsequent research found that this phenomenon was widespread among bacterial species and controlled expression of major determinants of bacterial-host interactions. Underlying mechanisms were not discovered until the 1970s/1980s but were found to encompass intrinsic aspects of DNA processes (i.e. DNA slippage and recombination) and DNA modifications (i.e. DNA methylation). Despite this long history, discoveries are ongoing with expansions of the phase-variable repertoire into new organisms and novel insights into the functions of known loci and switching mechanisms. Some of these discoveries are somewhat controversial as the term 'PV' is being applied without addressing key aspects of the phenomenon such as whether mutations or epigenetic changes are reversible and generated prior to selection. Another 'missing' aspect of PV research is the impact of these adaptive switches in real-world situations. This review provides a perspective on the historical timeline of the discovery of PV, the current state-of-the-art, controversial aspects of classifying phase-variable loci and possible 'missing' real-world effects of this phenomenon.

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来源期刊
Microbiology-Sgm
Microbiology-Sgm 生物-微生物学
CiteScore
4.60
自引率
7.10%
发文量
132
审稿时长
3.0 months
期刊介绍: We publish high-quality original research on bacteria, fungi, protists, archaea, algae, parasites and other microscopic life forms. Topics include but are not limited to: Antimicrobials and antimicrobial resistance Bacteriology and parasitology Biochemistry and biophysics Biofilms and biological systems Biotechnology and bioremediation Cell biology and signalling Chemical biology Cross-disciplinary work Ecology and environmental microbiology Food microbiology Genetics Host–microbe interactions Microbial methods and techniques Microscopy and imaging Omics, including genomics, proteomics and metabolomics Physiology and metabolism Systems biology and synthetic biology The microbiome.
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