Bouranis John A, Tfaily Malak M
Department of Environmental Science, The University of Arizona, Tucson, AZ, 85719, USA.
Department of Environmental Science, The University of Arizona, Tucson, AZ, 85719, USA.
Trends Microbiol. 2024 Dec;32(12):1170-1178. doi: 10.1016/j.tim.2024.05.003. Epub 2024 Jun 1.
Microbial metabolism influences the global climate and human health and is governed by the balance between NADH and NAD through redox reactions. Historically, oxidative (i.e., catabolism) and reductive (i.e., fermentation) pathways have been studied in isolation, obscuring the complete metabolic picture. However, new omics technologies and biotechnological tools now allow an integrated system-level understanding of the drivers of microbial metabolism through observation and manipulation of redox reactions. Here we present perspectives on the importance of viewing microbial metabolism as the dynamic interplay between oxidative and reductive processes and apply this framework to diverse microbial systems. Additionally, we highlight novel biotechnologies to monitor and manipulate microbial redox status to control metabolism in unprecedented ways. This redox-focused systems biology framework enables a more mechanistic understanding of microbial metabolism.
微生物代谢影响全球气候和人类健康,并通过氧化还原反应受NADH和NAD之间平衡的调控。从历史上看,氧化(即分解代谢)和还原(即发酵)途径一直是分开研究的,这掩盖了完整的代谢图景。然而,新的组学技术和生物技术工具现在使我们能够通过观察和操纵氧化还原反应,从系统层面综合理解微生物代谢的驱动因素。在这里,我们阐述了将微生物代谢视为氧化和还原过程之间动态相互作用的重要性,并将这一框架应用于各种微生物系统。此外,我们强调了用于监测和操纵微生物氧化还原状态以以前所未有的方式控制代谢的新型生物技术。这种以氧化还原为重点的系统生物学框架能够更深入地理解微生物代谢。