代谢工程
生物化学
代谢途径
焊剂(冶金)
通量平衡分析
代谢通量分析
化学
糖酵解
生产过剩
大肠杆菌
合成生物学
生物制造
蛋白质工程
生物反应器
氨基酸
谷氨酸棒杆菌
新陈代谢
生物技术
血红素
酶
生产(经济)
生物过程工程
甘氨酸
生物
生化工程
生物合成
柠檬酸循环
代谢网络
作者
Z Huang,Jing Cao,Weijian Jin,J Yao,Lixia Yuan,Yujie Ma,Jianmin Wu,Xiangsong Chen
标识
DOI:10.1021/acssynbio.6c00005
摘要
5-Aminolevulinic acid (5-ALA) is a naturally occurring nonproteinogenic amino acid with considerable potential in agricultural and pharmaceutical applications, and its biomanufacturing has attracted growing interest. To meet market demand, this study developed an efficient production process by engineering Escherichia coli . First, we established the C4 biosynthetic pathway for 5-ALA and minimized glycine degradation by targeted deletion of gcvP and kbL . Subsequently, the introduction of a nonoxidative glycolysis (NOG) module combined with enhanced glucose uptake further increased 5-ALA production. To alleviate host toxicity, efflux engineering and antioxidant systems were integrated, further raising the titer to 6.93 ± 0.28 g/L. Dynamic regulation of sucCD expression together with redox rebalancing maintained a balance between precursor supply and cell growth. Finally, attenuation of hemB expression reduced metabolic flux diversion toward heme synthesis, yielding the engineered strain A48, which produced 55.11 g/L of 5-ALA within 41 h in a 5 L bioreactor. The metabolic engineering strategy presented in this study establishes an efficient biosynthetic platform for 5-ALA production.
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