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1.
Angew Chem Int Ed Engl ; 63(12): e202319925, 2024 Mar 18.
Article En | MEDLINE | ID: mdl-38286754

Anaerobes dominate the microbiota of the gastrointestinal (GI) tract, where a significant portion of small molecules can be degraded or modified. However, the enormous metabolic capacity of gut anaerobes remains largely elusive in contrast to aerobic bacteria, mainly due to the requirement of sophisticated laboratory settings. In this study, we employed an in silico machine learning platform, MoleculeX, to predict the metabolic capacity of a gut anaerobe, Clostridium sporogenes, against small molecules. Experiments revealed that among the top seven candidates predicted as unstable, six indeed exhibited instability in C. sporogenes culture. We further identified several metabolites resulting from the supplementation of everolimus in the bacterial culture for the first time. By utilizing bioinformatics and in vitro biochemical assays, we successfully identified an enzyme encoded in the genome of C. sporogenes responsible for everolimus transformation. Our framework thus can potentially facilitate future understanding of small molecules metabolism in the gut, further improve patient care through personalized medicine, and guide the development of new small molecule drugs and therapeutic approaches.


Clostridium , Everolimus , Humans , Everolimus/metabolism , Clostridium/metabolism , Bacteria, Anaerobic
2.
ACS Synth Biol ; 10(9): 2151-2158, 2021 09 17.
Article En | MEDLINE | ID: mdl-34530615

Benzoxazoles are frequently found in synthetic pharmaceuticals and medicinally active natural products. To facilitate benzoxazole-based drug development, an eco-friendly and rapid platform for benzoxazole production is required. In this study, we have completed the biosynthesis of benzoxazoles in E. coli by coexpressing the minimal set of enzymes required for their biosynthesis. Moreover, by coupling this E. coli-based platform with precursor-directed biosynthesis, we have shown that the benzoxazole biosynthetic system is highly promiscuous in incorporating fluorine, chlorine, nitrile, picolinic, and alkyne functionalities into the scaffold. Our E. coli-based system thus paves the way for straightforward generation of novel benzoxazole analogues through future protein engineering and combinatorial biosynthesis.


Benzoxazoles/metabolism , Biosynthetic Pathways/genetics , Escherichia coli/metabolism , Benzoxazoles/analysis , Benzoxazoles/chemistry , Biological Products/chemistry , Biological Products/metabolism , Chromatography, High Pressure Liquid , Escherichia coli/chemistry , Escherichia coli/genetics , Metabolic Engineering/methods , Multigene Family , Plasmids/genetics , Plasmids/metabolism
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