代谢工程
大肠杆菌
氨基酸
蛋氨酸
发酵
生物化学
半胱氨酸
硫黄
新陈代谢
生化工程
硫代谢
化学
生物
酶
基因
有机化学
工程类
作者
Lijuan Wang,Yingying Guo,Yizhou Shen,Kun Yang,Xue Cai,Bo Zhang,Zhi‐Qiang Liu,Yu‐Guo Zheng
标识
DOI:10.1016/j.biotechadv.2024.108353
摘要
L-Cysteine and L-methionine, as the only two sulfur-containing amino acids among the canonical 20 amino acids, possess distinct characteristics and find wide-ranging industrial applications. The use of different organisms for fermentative production of L-cysteine and L-methionine is gaining increasing attention, with Escherichia coli being extensively studied as the preferred strain. This preference is due to its ability to grow rapidly in cost-effective media, its robustness for industrial processes, the well-characterized metabolism, and the availability of molecular tools for genetic engineering. This review focuses on the genetic and molecular mechanisms involved in the production of these sulfur-containing amino acids in E. coli. Additionally, we systematically summarize the metabolic engineering strategies employed to enhance their production, including the identification of new targets, modulation of metabolic fluxes, modification of transport systems, dynamic regulation strategies, and optimization of fermentation conditions. The strategies and design principles discussed in this review hold the potential to facilitate the development of strain and process engineering for direct fermentation of sulfur-containing amino acids.
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