| Literature DB >> 34497420 |
Martina Klünemann1,2, Sergej Andrejev1,3, Sonja Blasche1,4, Andre Mateus1, Prasad Phapale1, Saravanan Devendran1, Johanna Vappiani5, Bernd Simon1, Timothy A Scott6, Eleni Kafkia4, Dimitrios Konstantinidis1, Katharina Zirngibl1,4, Eleonora Mastrorilli1, Manuel Banzhaf1,7, Marie-Therese Mackmull1,8, Felix Hövelmann1, Leo Nesme1,9, Ana Rita Brochado1,10, Lisa Maier1,11, Thomas Bock1,12, Vinita Periwal1,4, Manjeet Kumar1, Yongkyu Kim1, Melanie Tramontano1,3, Carsten Schultz1,13, Martin Beck1,14, Janosch Hennig1,15, Michael Zimmermann1, Daniel C Sévin5, Filipe Cabreiro6,16,17, Mikhail M Savitski1, Peer Bork18,19,20,21, Athanasios Typas22, Kiran R Patil23,24.
Abstract
Bacteria in the gut can modulate the availability and efficacy of therapeutic drugs. However, the systematic mapping of the interactions between drugs and bacteria has only started recently1 and the main underlying mechanism proposed is the chemical transformation of drugs by microorganisms (biotransformation). Here we investigated the depletion of 15 structurally diverse drugs by 25 representative strains of gut bacteria. This revealed 70 bacteria-drug interactions, 29 of which had not to our knowledge been reported before. Over half of the new interactions can be ascribed to bioaccumulation; that is, bacteria storing the drug intracellularly without chemically modifying it, and in most cases without the growth of the bacteria being affected. As a case in point, we studied the molecular basis of bioaccumulation of the widely used antidepressant duloxetine by using click chemistry, thermal proteome profiling and metabolomics. We find that duloxetine binds to several metabolic enzymes and changes the metabolite secretion of the respective bacteria. When tested in a defined microbial community of accumulators and non-accumulators, duloxetine markedly altered the composition of the community through metabolic cross-feeding. We further validated our findings in an animal model, showing that bioaccumulating bacteria attenuate the behavioural response of Caenorhabditis elegans to duloxetine. Together, our results show that bioaccumulation by gut bacteria may be a common mechanism that alters drug availability and bacterial metabolism, with implications for microbiota composition, pharmacokinetics, side effects and drug responses, probably in an individual manner.Entities:
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Year: 2021 PMID: 34497420 DOI: 10.1038/s41586-021-03891-8
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962