萨比宁
化学
代谢工程
酵母
生物化学
萜类
生物合成
合成生物学
谷氨酸棒杆菌
单萜
甲醇
萜烯
焊剂(冶金)
产量(工程)
生物量(生态学)
拉伤
碳纤维
易熔合金
生物反应器
融合
生物制造
生物
固碳
代谢途径
酿酒酵母
苯丙素
三羧酸
碳通量
生物过程
发酵
代谢通量分析
作者
Chenchen Nan,Xiaolong Guo,Jiale Cheng,Xiaofeng Li,Jun Feng,Jufang Wang,Hongxin Fu
标识
DOI:10.1021/acs.jafc.5c12464
摘要
Sabinene, a high-value monoterpene with broad industrial applications, is facing growing demand. To enable sustainable and cost-efficient production, we engineered the yeast Pichia pastoris for sabinene production from methanol. Through systematic metabolic engineering, we implemented a multipronged strategy to optimize sabinene biosynthesis: (1) enhancing precursor supply and synthase activity via fusion proteins (ERG20WW-tNPPS1 and ERG20WW-t37SabS1 (H561F)), (2) redirecting carbon flux through the phosphoketolase-phosphotransacetylase pathway, and (3) upregulating the mevalonate pathway via overexpression of a truncated HMGR. The engineered strain achieved record-high sabinene titers of 3.24 g/L in shake flasks and 6.38 g/L in a 3-L bioreactor. Notably, this yield surpasses those achieved with conventional sugar-based feedstocks in other microbial hosts, underscoring the potential of methanol as a superior carbon source for terpenoid biosynthesis. This work not only establishes P. pastoris as a promising platform for sabinene production, but also paves the way for methanol-based biomanufacturing of diverse natural products.
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