Key Laboratory of Industrial Biotechnology of the Ministry of Education, Laboratory of Applied Microorganisms and Metabolic Engineering, School of Biotechnology, Jiangnan University, Wuxi 214122, China.
Key Laboratory of Industrial Biotechnology of the Ministry of Education, Laboratory of Applied Microorganisms and Metabolic Engineering, School of Biotechnology, Jiangnan University, Wuxi 214122, China.
Bioresour Technol. 2024 Apr;397:130502. doi: 10.1016/j.biortech.2024.130502. Epub 2024 Feb 27.
Branched-chain amino acids (BCAAs) such as L-valine, L-leucine, and L-isoleucine are widely used in food and feed. To comply with sustainable development goals, commercial production of BCAAs has been completely replaced with microbial fermentation. However, the efficient production of BCAAs by microorganisms remains a serious challenge due to their staggered metabolic networks and cell growth. To overcome these difficulties, systemic metabolic engineering has emerged as an effective and feasible strategy for the biosynthesis of BCAA. This review firstly summarizes the research advances in the microbial synthesis of BCAAs and representative engineering strategies. Second, systematic methods, such as high-throughput screening, adaptive laboratory evolution, and omics analysis, can be used to analyses the synthesis of BCAAs at the whole-cell level and further improve the titer of target chemicals. Finally, new tools and engineering strategies that may increase the production output and development direction of the microbial production of BCAAs are discussed.
支链氨基酸(BCAAs)如 L-缬氨酸、L-亮氨酸和 L-异亮氨酸广泛应用于食品和饲料。为了符合可持续发展目标,BCAAs 的商业生产已完全被微生物发酵所取代。然而,由于其代谢网络和细胞生长的交错,微生物高效生产 BCAAs 仍然是一个严峻的挑战。为了克服这些困难,系统代谢工程已成为合成 BCAA 的有效可行策略。本文首先总结了微生物合成 BCAAs 的研究进展和代表性的工程策略。其次,高通量筛选、适应性实验室进化和组学分析等系统方法可用于分析全细胞水平的 BCAAs 合成,并进一步提高目标化学品的产率。最后,讨论了可能提高微生物生产 BCAAs 产量的新工具和工程策略及发展方向。