Modulators of a robust and efficient metabolism: Perspective and insights from the Rid superfamily of proteins.

2区 生物学 Q1 Biochemistry, Genetics and Molecular Biology Advances in Microbial Physiology Pub Date : 2023-01-01 Epub Date: 2023-04-29 DOI:10.1016/bs.ampbs.2023.04.001
Ronnie L Fulton, Diana M Downs
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Abstract

Metabolism is an integrated network of biochemical pathways that assemble to generate the robust, responsive physiologies of microorganisms. Despite decades of fundamental studies on metabolic processes and pathways, our understanding of the nuance and complexity of metabolism remains incomplete. The ability to predict and model metabolic network structure, and its influence on cellular fitness, is complicated by the persistence of genes of unknown function, even in the best-studied model organisms. This review describes the definition and continuing study of the Rid superfamily of proteins. These studies are presented with a perspective that illustrates how metabolic complexity can complicate the assignment of function to uncharacterized genes. The Rid superfamily of proteins has been divided into eight subfamilies, including the well-studied RidA subfamily. Aside from the RidA proteins, which are present in all domains of life and prevent metabolic stress, most members of the Rid superfamily have no demonstrated physiological role. Recent progress on functional assignment supports the hypothesis that, overall, proteins in the Rid superfamily modulate metabolic processes to ensure optimal organismal fitness.

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稳健和高效代谢的调节剂:从Rid蛋白超家族的观点和见解。
代谢是一个生化途径的综合网络,这些途径聚集在一起,产生了强大的、反应灵敏的微生物生理。尽管对代谢过程和途径进行了几十年的基础研究,但我们对代谢的细微差别和复杂性的理解仍然不完整。预测和模拟代谢网络结构及其对细胞适应性的影响的能力,由于功能未知的基因的持续存在而变得复杂,即使在研究得最好的模式生物中也是如此。本文综述了Rid蛋白超家族的定义和持续研究。这些研究提出了一个观点,说明代谢复杂性如何使功能分配复杂化到未表征的基因。Rid蛋白超家族被分为八个亚家族,包括被充分研究的RidA亚家族。除了RidA蛋白,它存在于生命的所有领域并防止代谢应激,大多数Rid超家族成员没有证明的生理作用。最近关于功能分配的研究进展支持了这样的假设,即总的来说,Rid超家族中的蛋白质调节代谢过程以确保最佳的有机体适应性。
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来源期刊
Advances in Microbial Physiology
Advances in Microbial Physiology 生物-生化与分子生物学
CiteScore
6.20
自引率
0.00%
发文量
16
期刊介绍: Advances in Microbial Physiology publishes topical and important reviews, interpreting physiology to include all material that contributes to our understanding of how microorganisms and their component parts work. First published in 1967, the editors have always striven to interpret microbial physiology in the broadest context and have never restricted the contents to traditional views of whole cell physiology.
期刊最新文献
Preface. Biological functions of bacterial lysophospholipids. Redefining the bacterial Type I protein secretion system. Purine catabolism by enterobacteria. Fumarate, a central electron acceptor for Enterobacteriaceae beyond fumarate respiration and energy conservation.
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