乙苯
BTEX公司
化学
除氧
二甲苯
有机化学
发酵
生物转化
化学合成
共代谢
甘油
精细化工
生物炼制
有机合成
人类健康
生物转化
化学工业
生物合成
植物油精炼
绿色化学
相(物质)
商品化学品
异丙基
代谢工程
作者
Xuan Zou,T. W. Kim,Zi Wei Luo,Kyeong Rok Choi,Sunkyu Han,Sang Yup Lee
标识
DOI:10.1073/pnas.2509568122
摘要
Benzene, toluene, ethylbenzene, and p-xylene (BTEX) are key aromatic hydrocarbons widely used in fuels, polymers, and industrial chemicals, yet their production remains heavily dependent on fossil resources, raising environmental and public health concerns. To promote de novo production of BTEX from renewable feedstocks, we developed a chemobiological platform that integrates microbial biosynthesis with chemical deoxygenation. Four metabolically engineered Escherichia coli strains were constructed to produce one of four oxygenated precursors of BTEX-phenol, benzyl alcohol, 2-phenylethanol, or 2,5-xylenol-from glucose or glycerol. After in situ two-phase extractive fermentation of the individual engineered strains using isopropyl myristate (IPM) as the organic solvent, the organic phase containing one of the oxygenated precursors was separated from the aqueous phase and subjected to distinct chemical deoxygenation reactions to reduce the precursor to the corresponding BTEX compound. This modular approach, based on the compatible organic solvent, streamlines biotransformation and consecutive chemical derivatization, providing a practical and viable route to sustainable BTEX production. The platform is extensible and provides a generalizable framework for integrating biosynthesis with chemical deoxygenation in hybrid bioprocessing.
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