代谢工程
酵母
生物化学
合成生物学
原材料
酿酒酵母
氨基酸
工业微生物学
生物
化学
突变体
运输机
代谢途径
发酵
互补
生物技术
单萜
可再生资源
生产(经济)
谷氨酸棒杆菌
生物过程工程
新陈代谢
柠檬酸循环
细菌
蛋白质工程
作者
Yapeng Zhang,Wenqiang Li,Jianwen Wang,Chenwen Liu,Bo Lv,Lei Qin,Ting An,Hao He,Chun Li
标识
DOI:10.1021/acssuschemeng.6c03904
摘要
Abstract α-Pinene is a biologically active monoterpene compound derived from coniferous plants, performing multiple ecological and physiological functions. Moreover, its strained bicyclic skeleton makes it an exceptional renewable feedstock for high-density renewable fuels. However, the extraction of α-pinene from plants is a time-consuming and laborious process. Microbial cell factories offer a green, low-carbon, and tightly controllable route for producing α-pinene. Despite this, low biosynthetic efficiency limits the industrial production of α-pinene by microbial cells. In this study, we first demonstrated that SGE1, a transporter enhancing pinene synthesis, functions within the amino acid metabolic network, with its overexpression primarily promoting the synthesis and utilization of arginine and lysine. To enhance α-pinene synthesis, the Pt30S122N mutant was obtained, resulting in a 34.4% increase in α-pinene yield. Differential expression analysis between isopropyl myristate (IPM)-supplemented and IPM-free engineered strains identified AGP1, an amino acid transporter that enhances production in pinene engineered strains, with α-pinene titers increasing by up to 14% upon its overexpression. Ultimately, diploid fusion further boosted production by 88.5% over the haploid counterpart in a 5-L bioreactor, achieving the highest yeast titer reported to date of 3.9 g/L. This study establishes a platform for the microbial industrial production of α-pinene.
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