丁烷
代谢工程
化学
生物炼制
生化工程
可再生能源
生物化学
大肠杆菌
生物燃料
Strecker胺基酸合成
有机化学
酶
生物技术
生物
催化作用
基因
工程类
对映选择合成
原材料
生态学
作者
Yilan Liu,Anna N. Khusnutdinova,Jinjin Chen,David Crisante,Khorcheska Batyrova,Kaushik Raj,Michelle Feigis,Erfan Shirzadi,Xiaotong Wang,Roham Dorakhan,Xue Wang,P.J. Stogios,Alexander F. Yakunin,Edward H. Sargent,Radhakrishnan Mahadevan
标识
DOI:10.1016/j.ymben.2022.10.001
摘要
Rising concerns about climate change and sustainable energy have attracted efforts towards developing environmentally friendly alternatives to fossil fuels. Biosynthesis of n-butane, a highly desirable petro-chemical, fuel additive and diluent in the oil industry, remains a challenge. In this work, we first engineered enzymes Tes, Car and AD in the termination module to improve the selectivity of n-butane biosynthesis, and ancestral reconstruction and a synthetic RBS significantly improved the AD abundance. Next, we did ribosome binding site (RBS) calculation to identify potential metabolic bottlenecks, and then mitigated the bottleneck with RBS engineering and precursor propionyl-CoA addition. Furthermore, we employed a model-assisted strain design and a nonrepetitive extra-long sgRNA arrays (ELSAs) and quorum sensing assisted CRISPRi to facilitate a dynamic two-stage fermentation. Through systems engineering, n-butane production was increased by 168-fold from 0.04 to 6.74 mg/L. Finally, the maximum n-butane production from acetate was predicted using parsimonious flux balance analysis (pFBA), and we achieved n-butane production from acetate produced by electrocatalytic CO reduction. Our findings pave the way for selectively producing n-butane from renewable carbon source. • Enzyme engineering of Tes, Car and AD was used to produce n-butane preferentially. • Metabolic bottlenecks in n-butane biosynthetic pathway were identified and mitigated. • Model-assisted metabolic engineering strategies were performed to increase n-butane production. • N-butane production was achieved and increased 168-fold in the systems engineered E. coli. • Selective n-butane biosynthesis in E. coli from acetic acid produced by electrocatalytic CO reduction was demonstrated both theoretically and experimentally.
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