Department of Bacteriology, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA; email:
Annu Rev Genet. 2021 Nov 23;55:115-133. doi: 10.1146/annurev-genet-021821-025827. Epub 2021 Aug 20.
Bacterial stress-signaling alarmones are important components of a protective network against diverse stresses such as nutrient starvation and antibiotic assault. pppGpp and ppGpp, collectively (p)ppGpp, have well-documented regulatory roles in gene expression and protein translation. Recent work has highlighted another key function of (p)ppGpp: inducing rapid and coordinated changes in cellular metabolism by regulating enzymatic activities, especially those involved in purine nucleotide synthesis. Failure of metabolic regulation by (p)ppGpp results in the loss of coordination between metabolic and macromolecular processes, leading to cellular toxicity. In this review, we document how (p)ppGpp and newly characterized nucleotides pGpp and (p)ppApp directly regulate these enzymatic targets for metabolic remodeling. We examine targets' common determinants for alarmone interaction as well as their evolutionary diversification. We highlight classical and emerging themes in nucleotide signaling, including oligomerization and allostery along with metabolic interconversion and crosstalk, illustrating how they allow optimized bacterial adaptation to their environmental niches.
细菌应激信号警报素是应对多种应激(如营养饥饿和抗生素攻击)的保护网络的重要组成部分。pppGpp 和 ppGpp(统称为(p)ppGpp)在基因表达和蛋白质翻译方面具有明确的调节作用。最近的工作强调了(p)ppGpp 的另一个关键功能:通过调节酶活性,特别是参与嘌呤核苷酸合成的酶活性,诱导细胞代谢的快速和协调变化。(p)ppGpp 代谢调节的失败导致代谢和大分子过程之间失去协调,导致细胞毒性。在这篇综述中,我们记录了(p)ppGpp 以及新表征的核苷酸 pGpp 和(p)ppApp 如何直接调节这些酶靶标以进行代谢重塑。我们检查了警报素相互作用的靶标共同决定因素及其进化多样化。我们强调了核苷酸信号传递的经典和新兴主题,包括寡聚化和变构以及代谢转化和串扰,说明了它们如何使细菌能够优化适应其环境小生境。