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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Survival and Evolution of a Large Multidrug Resistance Plasmid in New Clinical Bacterial Hosts
Andreas Porse1, Kristian Schønning2, Christian Munck3
1The Novo Nordisk Foundation Center for Biosustainability, Technical University of Denmark, Hørsholm, Denmark.
Abstract:
Large conjugative plasmids are important drivers of bacterial evolution and contribute significantly to the dissemination of antibiotic resistance. Although plasmid borne multidrug resistance is recognized as one of the main challenges in modern medicine, the adaptive forces shaping the evolution of these plasmids within pathogenic hosts are poorly understood. Here we study plasmid-host adaptations following transfer of a 73 kb conjugative multidrug resistance plasmid to naïve clinical isolates of Klebsiella pneumoniae and Escherichia coli. We use experimental evolution, mathematical modelling and population sequencing to show that the long-term persistence and molecular integrity of the plasmid is highly influenced by multiple factors within a 25 kb plasmid region constituting a host-dependent burden. In the E. coli hosts investigated here, improved plasmid stability readily evolves via IS26 mediated deletions of costly regions from the plasmid backbone, effectively expanding the host-range of the plasmid. Although these adaptations were also beneficial to plasmid persistence in a naïve K. pneumoniae host, they were never observed in this species, indicating that differential evolvability can limit opportunities of plasmid adaptation. While insertion sequences are well known to supply plasmids with adaptive traits, our findings suggest that they also play an important role in plasmid evolution by maintaining the plasticity necessary to alleviate plasmid-host constrains. Further, the observed evolutionary strategy consistently followed by all evolved E. coli lineages exposes a trade-off between horizontal and vertical transmission that may ultimately limit the dissemination potential of clinical multidrug resistance plasmids in these hosts.
Insights
Large conjugative plasmids drive bacterial evolution and antibiotic resistance spread. Adaptations in E. coli reduce plasmid burden, enhancing stability and host range, but this strategy is limited in K. pneumoniae.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genetics
Background:
- Large conjugative plasmids are key drivers of bacterial evolution.
- They significantly contribute to the spread of antibiotic resistance, posing a major challenge in modern medicine.
- The evolutionary pressures shaping these plasmids within pathogenic hosts remain poorly understood.
Purpose of the Study:
- To investigate plasmid-host adaptations after transferring a multidrug resistance plasmid to clinical isolates of Klebsiella pneumoniae and Escherichia coli.
- To understand the factors influencing plasmid persistence and integrity within new hosts.
- To explore the role of insertion sequences in plasmid evolution and host adaptation.
Main Methods:
- Experimental evolution
- Mathematical modeling
- Population sequencing
Main Results:
- Plasmid persistence and integrity are influenced by a host-dependent burden within a specific plasmid region.
- In E. coli, IS26-mediated deletions of costly plasmid regions enhance stability and host range.
- These adaptations, beneficial in E. coli, were not observed in K. pneumoniae, indicating differential evolvability.
Conclusions:
- Insertion sequences are crucial for plasmid evolution, providing plasticity to overcome host constraints.
- Evolved E. coli lineages show a trade-off between horizontal and vertical transmission, potentially limiting multidrug resistance plasmid dissemination.
- Differential evolvability between bacterial species can restrict plasmid adaptation opportunities.
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