Affiliation:
1. Institute of Biochemical Engineering Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering Ministry of Industry and Information Technology School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 102488 China
2. Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering Ministry of Industry and Information Technology School of Chemistry and Chemical Engineering Beijing Institute of Technology Beijing 102488 China
3. Frontiers Science Center for Synthetic Biology and Key Laboratory of Systems Bioengineering (Ministry of Education) School of Chemical Engineering and Technology Tianjin University Tianjin China.
Abstract
AbstractProtein engineering of cytochrome P450s has enabled these biocatalysts to promote a variety of abiotic reactions beyond nature‘s repertoire. Integrating such non‐natural transformations with microbial biosynthetic pathways could allow sustainable enzymatic production of modified natural product derivatives. In particular, trifluoromethylation is a highly desirable modification in pharmaceutical research due to the positive effects of the trifluoromethyl group on drug potency, bioavailability, and metabolic stability. This study demonstrates the biosynthesis of non‐natural trifluoromethyl‐substituted cyclopropane derivatives of natural monoterpene scaffolds using an engineered cytochrome P450 variant, P411‐PFA. P411‐PFA successfully catalyzed the transfer of a trifluoromethyl carbene from 2‐diazo‐1,1,1‐trifluoroethane to the terminal alkenes of several monoterpenes, including L‐carveol, carvone, perilla alcohol, and perillartine, to generate the corresponding trifluoromethylated cyclopropane products. Furthermore, integration of this abiotic cyclopropanation reaction with a reconstructed metabolic pathway for L‐carveol production in Escherichia coli enabled one‐step biosynthesis of a trifluoromethylated L‐carveol derivative from limonene precursor. Overall, amalgamating synthetic enzymatic chemistry with established metabolic pathways represents a promising approach to sustainably produce bioactive natural product analogs.
Funder
National Key Research and Development Program of China
Subject
General Chemistry,Catalysis,Organic Chemistry
Cited by
2 articles.
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