代谢工程
萜类
酵母
焊剂(冶金)
代谢通量分析
生物
新陈代谢
酿酒酵母
生产过剩
次生代谢
生物化学
碳通量
合成生物学
细胞代谢
生物合成
生物技术
计算生物学
化学
基因
生态学
生态系统
有机化学
作者
Xuan Cao,Wei Yu,Yu Chen,Shan Yang,Zongbao K. Zhao,Jens Nielsen,Hongwei Luan,Yongjin J. Zhou
标识
DOI:10.1016/j.ymben.2022.11.002
摘要
The diterpenoid sclareol is an industrially important precursor for alternative sustainable supply of ambergris. However, its current production from plant extraction is neither economical nor environmental-friendly, since it requires laborious and cost-intensive purification procedures and plants cultivation is susceptible to environmental factors. Engineering cell factories for bio-manufacturing can enable sustainable production of natural products. However, stringent metabolic regulation poses challenges to rewire cellular metabolism for overproduction of compounds of interest. Here we used a modular approach to globally rewire the cellular metabolism for improving sclareol production to 11.4 g/L in budding yeast Saccharomyces cerevisiae, the highest reported diterpenoid titer in microbes. Metabolic flux analysis showed that modular balanced metabolism drove the metabolic flux toward the biosynthesis of targeted molecules, and transcriptomic analysis revealed that the expression of central metabolism genes was shaped for a new balanced metabolism, which laid a foundation in extensive metabolic engineering of other microbial species for sustainable bio-production.
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