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Updated: Oct 11, 2025

Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Pathogen invasion-dependent tissue reservoirs and plasmid-encoded antibiotic degradation boost plasmid spread in the
Erik Bakkeren1, Joana Anuschka Herter1, Jana Sanne Huisman2,3
1Institute of Microbiology, Department of Biology, ETH Zurich, Zurich, Switzerland.
Abstract:
Many plasmids encode antibiotic resistance genes. Through conjugation, plasmids can be rapidly disseminated. Previous work identified gut luminal donor/recipient blooms and tissue-lodged plasmid-bearing persister cells of the enteric pathogen Salmonella enterica serovar Typhimurium (S.Tm) that survive antibiotic therapy in host tissues, as factors promoting plasmid dissemination among Enterobacteriaceae. However, the buildup of tissue reservoirs and their contribution to plasmid spread await experimental demonstration. Here, we asked if re-seeding-plasmid acquisition-invasion cycles by S.Tm could serve to diversify tissue-lodged plasmid reservoirs, and thereby promote plasmid spread. Starting with intraperitoneal mouse infections, we demonstrate that S.Tm cells re-seeding the gut lumen initiate clonal expansion. Extended spectrum beta-lactamase (ESBL) plasmid-encoded gut luminal antibiotic degradation by donors can foster recipient survival under beta-lactam antibiotic treatment, enhancing transconjugant formation upon re-seeding. S.Tm transconjugants can subsequently re-enter host tissues introducing the new plasmid into the tissue-lodged reservoir. Population dynamics analyses pinpoint recipient migration into the gut lumen as rate-limiting for plasmid transfer dynamics in our model. Priority effects may be a limiting factor for reservoir formation in host tissues. Overall, our proof-of-principle data indicates that luminal antibiotic degradation and shuttling between the gut lumen and tissue-resident reservoirs can promote the accumulation and spread of plasmids within a host over time.
Insights
Salmonella Typhimurium can spread antibiotic resistance plasmids through gut and tissue reservoirs. Gut bacteria degrading antibiotics helps new plasmid-carrying bacteria form and spread resistance within a host.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Plasmids carrying antibiotic resistance genes spread rapidly via conjugation.
- Salmonella Typhimurium (S.Tm) persister cells in tissues and gut blooms aid plasmid dissemination.
- The role of tissue reservoirs in plasmid spread requires experimental validation.
Purpose of the Study:
- To investigate if S.Tm re-seeding cycles diversify tissue plasmid reservoirs and promote spread.
- To determine if gut luminal antibiotic degradation by donors enhances plasmid transfer.
- To explore the dynamics of plasmid accumulation and spread within host tissues.
Main Methods:
- Intraperitoneal mouse infections with S.Tm.
- Monitoring of S.Tm clonal expansion and plasmid acquisition in the gut lumen.
- Analysis of antibiotic degradation by plasmid-encoded enzymes.
- Population dynamics modeling to identify rate-limiting steps.
Main Results:
- S.Tm re-seeding the gut lumen initiates clonal expansion.
- Gut luminal antibiotic degradation by donors promotes recipient survival and transconjugant formation.
- Transconjugants re-enter tissues, adding new plasmids to the reservoir.
- Recipient migration to the gut lumen limits plasmid transfer; priority effects may limit reservoir formation.
Conclusions:
- Luminal antibiotic degradation and gut-tissue shuttling promote plasmid accumulation and spread.
- S.Tm can actively diversify and expand tissue-lodged plasmid reservoirs.
- Understanding these dynamics is crucial for controlling antibiotic resistance spread.
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