谷氨酸棒杆菌
格式化
琥珀酸
代谢工程
甲酸
化学
发酵
生物化学
代谢途径
新陈代谢
酶
基因
催化作用
作者
Kai Li,Xue Zhang,Cheng Li,Yu-Cheng Liang,Xinqing Zhao,Chen‐Guang Liu,Anthony J. Sinskey,Feng‐Wu Bai
标识
DOI:10.1016/j.biortech.2024.130774
摘要
Formate as an ideal mediator between the physicochemical and biological realms can be obtained from electrochemical reduction of CO2 and used to produce bio-chemicals. Yet, limitations arise when employing natural formate-utilizing microorganisms due to restricted product range and low biomass yield. This study presents a breakthrough: engineered Corynebacterium glutamicum strains (L2-L4) through modular engineering. L2 incorporates the formate-tetrahydrofolate cycle and reverse glycine cleavage pathway, L3 enhances NAD(P)H regeneration, and L4 reinforces metabolic flux. Metabolic modeling elucidates C1 assimilation, guiding strain optimization for co-fermentation of formate and glucose. Strain L4 achieves an OD600 of 0.5 and produces 0.6 g/L succinic acid. 13C-labeled formate confirms C1 assimilation, and further laboratory evolution yields 1.3 g/L succinic acid. This study showcases a successful model for biologically assimilating formate in C. glutamicum that could be applied in C1-based biotechnological production, ultimately forming a formate-based bioeconomy.
科研通智能强力驱动
Strongly Powered by AbleSci AI