Nucleoid-associated proteins shape chromatin structure and transcriptional regulation across the bacterial kingdom.

IF 3.6 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Transcription-Austin Pub Date : 2021-08-01 Epub Date: 2021-09-09 DOI:10.1080/21541264.2021.1973865
Haley M Amemiya, Jeremy Schroeder, Peter L Freddolino
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引用次数: 0

Abstract

Genome architecture has proven to be critical in determining gene regulation across almost all domains of life. While many of the key components and mechanisms of eukaryotic genome organization have been described, the interplay between bacterial DNA organization and gene regulation is only now being fully appreciated. An increasing pool of evidence has demonstrated that the bacterial chromosome can reasonably be thought of as chromatin, and that bacterial chromosomes contain transcriptionally silent and transcriptionally active regions analogous to heterochromatin and euchromatin, respectively. The roles played by histones in eukaryotic systems appear to be shared across a range of nucleoid-associated proteins (NAPs) in bacteria, which function to compact, structure, and regulate large portions of bacterial chromosomes. The broad range of extant NAPs, and the extent to which they differ from species to species, has raised additional challenges in identifying and characterizing their roles in all but a handful of model bacteria. Here we review the regulatory roles played by NAPs in several well-studied bacteria and use the resulting state of knowledge to provide a working definition for NAPs, based on their function, binding pattern, and expression levels. We present a screening procedure which can be applied to any species for which transcriptomic data are available. Finally, we note that NAPs tend to play two major regulatory roles - xenogeneic silencers and developmental regulators - and that many unrecognized potential NAPs exist in each bacterial species examined.

Abstract Image

Abstract Image

核糖体相关蛋白塑造了整个细菌王国的染色质结构和转录调控。
基因组结构已被证明是决定几乎所有生命领域基因调控的关键。虽然人们已经描述了真核生物基因组组织的许多关键组成部分和机制,但细菌 DNA 组织与基因调控之间的相互作用现在才得到充分认识。越来越多的证据表明,可以将细菌染色体合理地视为染色质,细菌染色体包含转录沉默区和转录活跃区,分别类似于异染色质和超染色质。组蛋白在真核系统中的作用似乎与细菌中的一系列核仁相关蛋白(NAPs)相同,这些蛋白的功能是紧密、结构化和调控细菌染色体的大部分。现存的 NAPs 种类繁多,且因物种而异,这给鉴定和描述它们在除极少数模式细菌之外的所有细菌中的作用带来了更多挑战。在此,我们回顾了 NAPs 在几种研究得很好的细菌中发挥的调控作用,并根据其功能、结合模式和表达水平,利用由此获得的知识为 NAPs 提供了一个工作定义。我们介绍了一种筛选程序,该程序可应用于任何可获得转录组数据的物种。最后,我们指出,NAPs 往往扮演两种主要的调控角色--异种沉默子和发育调控因子--而且在所研究的每个细菌物种中都存在许多未被认识的潜在 NAPs。
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来源期刊
Transcription-Austin
Transcription-Austin BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
6.50
自引率
5.60%
发文量
9
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