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Pan-repository analysis reveals a drug-activating function of microbial bile acid conjugation

Charron-Lamoureux, V.; Kelly, P.; Zuffa, S.; Patan, A.; Sala-Climent, M.; Walker, C.; Zhao, H. N.; Xing, S.; Gouda, H.; Agongo, J.; Reilly, E. R.; Sallam, L.; Shore, S. F. H.; Ghoshal, S.; Harpavat, A. K.; Murugesan, M. P.; Yadav, S.; Versalovic, J.; Orlovsky, V.; El Abiead, Y.; Kvitne, K. E.; Markle, J. G.; Norton, G. J.; Walker, G. T.; Lee, M. H.; Hu, Z.; Carrillo Terrazas, M.; Zong, D. M.; Zarrinpar, A.; Raffatellu, M.; Martin, A.; Chin, L.; Devkota, S.; Gonzalez, A.; Ackermann, G.; Patel, L.; Weng, Y.; Knight, R.; Russell, R. K.; Hansen, R.; Svolos, V.; Gkikas, K.; Rattray, N. J.; Siegel,

2026-03-04 biochemistry
10.64898/2026.03.03.709330 bioRxiv
Show abstract

Microbially modified bile acids shape host physiology by regulating nutrient absorption, glucose homeostasis, circadian rhythms and thermoregulation. Here we identify a previously unrecognized drug-activating function of microbial bile acid conjugation. By systematically mining human LC-MS/MS datasets across public repositories and linking uncharacterized bile acid spectra to health-associated metadata, we discovered conjugates of the >75-year-old anti-inflammatory drug 5-aminosalicylic acid (5-ASA) with primary and secondary bile acids, including cholic, deoxycholic and lithocholic acids. These bile acid-drug conjugates were detected specifically in individuals treated with 5-ASA or its prodrugs. Multiple gut bacteria, including members of the Bacteroidota and Bacillota, generated cholyl-5-ASA in vitro, and bile salt hydrolase-associated transaminase activity was required for conjugate formation. In a mouse model of colitis, cholyl-5-ASA was associated with reduced intestinal inflammatory pathology and showed markedly enhanced activation of PPAR-{gamma} in cell-based reporter assays compared with 5-ASA alone. Consistent with this activity, cholyl-5-ASA elicited selective immunophenotypic changes in CD4 T cells in vitro, including increased Foxp3+ regulatory T cells. Together with prior evidence that 5-ASA efficacy depends on the microbiome, these findings support a model in which microbial bile acid conjugation represents a key activation step for 5-ASA therapy. More broadly, this work demonstrates how pan-repository metabolomics can uncover previously unrecognized microbiome-dependent chemical functions with direct therapeutic relevance.

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