Department of Biological Sciences, Sunandan Divatia School of Science, NMIMS Deemed to be University, Vile Parle (West), Mumbai, 400056, India.
Biosystems Engineering Lab, Department of Chemical Engineering, IIT Bombay, Powai, Mumbai, 400076, India.
Mol Biotechnol. 2022 Apr;64(4):373-387. doi: 10.1007/s12033-021-00426-4. Epub 2021 Nov 18.
Research on microbial fatty acid metabolism started in the late 1960s, and till date, various developments have aided in elucidating the fatty acid metabolism in great depth. Over the years, synthesis of microbial fatty acid has drawn industrial attention due to its diverse applications. However, fatty acid overproduction imparts various stresses on its metabolic pathways causing a bottleneck to further increase the fatty acid yields. Numerous strategies to increase fatty acid titres in Escherichia coli by pathway modulation have already been published, but the stress generated during fatty acid overproduction is relatively less studied. Stresses like pH, osmolarity and oxidative stress, not only lower fatty acid titres, but also alter the cell membrane composition, protein expression and membrane fluidity. This review discusses an overview of fatty acid synthesis pathway and presents a panoramic view of various stresses caused due to fatty acid overproduction in E. coli. It also addresses how certain stresses like high temperature and nitrogen limitation can boost fatty acid production. This review paper also highlights the interconnections that exist between these stresses.
微生物脂肪酸代谢的研究始于 20 世纪 60 年代末期,迄今为止,各种进展极大地促进了对脂肪酸代谢的深入研究。多年来,由于微生物脂肪酸具有广泛的应用,其合成引起了工业界的关注。然而,脂肪酸的过度生产会对其代谢途径施加各种压力,从而导致进一步提高脂肪酸产量的瓶颈。已经有许多通过途径调节来增加大肠杆菌中脂肪酸产量的策略,但是在脂肪酸过度生产过程中产生的压力相对较少得到研究。pH 值、渗透压和氧化应激等压力不仅降低了脂肪酸的产量,还改变了细胞膜的组成、蛋白质表达和膜流动性。本文综述了脂肪酸合成途径的概述,并介绍了由于大肠杆菌中脂肪酸过度生产而导致的各种压力,还讨论了高温和氮限制等某些压力如何促进脂肪酸的产生。本文还强调了这些压力之间存在的相互联系。