恶臭假单胞菌
可持续生产
航空
代谢工程
生产(经济)
比例(比率)
基因组
生物技术
生物
遗传学
工程类
地理
经济
基因
航空航天工程
地图学
宏观经济学
作者
Deepanwita Banerjee,Ian Sofian Yunus,Xi Wang,Jinho Kim,Aparajitha Srinivasan,Russel Navarro Menchavez,Yan Chen,Jennifer Gin,Christopher J. Petzold,Héctor García Martín,Jon Magnuson,Paul D. Adams,Blake A. Simmons,Aindrila Mukhopadhyay,Joonhoon Kim,Taek Soon Lee
标识
DOI:10.1016/j.ymben.2024.02.004
摘要
Sustainable aviation fuel (SAF) will significantly impact global warming in the aviation sector, and important SAF targets are emerging. Isoprenol is a precursor for a promising SAF compound DMCO (1,4-dimethylcyclooctane) and has been produced in several engineered microorganisms. Recently, Pseudomonas putida has gained interest as a future host for isoprenol bioproduction as it can utilize carbon sources from inexpensive plant biomass. Here, we engineer metabolically versatile host P. putida for isoprenol production. We employ two computational modeling approaches (Bilevel optimization and Constrained Minimal Cut Sets) to predict gene knockout targets and optimize the "IPP-bypass" pathway in P. putida to maximize isoprenol production. Altogether, the highest isoprenol production titer from P. putida was achieved at 3.5 g/L under fed-batch conditions. This combination of computational modeling and strain engineering on P. putida for an advanced biofuels production has vital significance in enabling a bioproduction process that can use renewable carbon streams.
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