Emergence of community behaviors in the gut microbiota upon drug treatment.

Cell

European Molecular Biology Laboratory, Genome Biology, Heidelberg, Germany; European Molecular Biology Laboratory, Structural and Computational Biology, Heidelberg, Germany. Electronic address:

Published: October 2024

AI Article Synopsis

  • - The study explored how 30 pharmaceuticals affect a synthetic community of 32 bacteria species compared to their individual responses, revealing that most drug effects remain consistent, but some unique communal behaviors were observed in about 26% of cases.
  • - Cross-protection, where drug-sensitive bacteria benefit in a community setting, was found to be six times more common than cross-sensitization, where they become more vulnerable, indicating that community dynamics can significantly alter drug interactions.
  • - Higher concentrations of drugs decreased cross-protection and increased cross-sensitization, suggesting that stronger drug exposure can destabilize microbial communities; specific bacterial processes were identified as key mechanisms for community protection against drugs.

Article Abstract

Pharmaceuticals can directly inhibit the growth of gut bacteria, but the degree to which such interactions manifest in complex community settings is an open question. Here, we compared the effects of 30 drugs on a 32-species synthetic community with their effects on each community member in isolation. While most individual drug-species interactions remained the same in the community context, communal behaviors emerged in 26% of all tested cases. Cross-protection during which drug-sensitive species were protected in community was 6 times more frequent than cross-sensitization, the converse phenomenon. Cross-protection decreased and cross-sensitization increased at higher drug concentrations, suggesting that the resilience of microbial communities can collapse when perturbations get stronger. By metabolically profiling drug-treated communities, we showed that both drug biotransformation and bioaccumulation contribute mechanistically to communal protection. As a proof of principle, we molecularly dissected a prominent case: species expressing specific nitroreductases degraded niclosamide, thereby protecting both themselves and sensitive community members.

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http://dx.doi.org/10.1016/j.cell.2024.08.037DOI Listing

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