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Updated: May 29, 2025

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Evolutionary rescue of bacterial populations by heterozygosity on multicopy plasmids
1Research Group Stochastic Evolutionary Dynamics, Department of Theoretical Biology, Max Planck Institute for Evolutionary Biology, 24306, Plön, Germany. dewan@evolbio.mpg.de.
Abstract:
Bacterial plasmids and other extrachromosomal DNA elements frequently carry genes with important fitness effects for their hosts. Multicopy plasmids can additionally carry distinct alleles of host-fitness-relevant genes on different plasmid copies, allowing for heterozygosity not possible for loci on haploid chromosomes. Plasmid-mediated heterozygosity may increase the fitness of bacterial cells in circumstances where there is an advantage to having multiple distinct alleles (heterozyogote advantage); however, plasmid-mediated heterozygosity is also subject to constant loss due to random segregation of plasmid copies on cell division. We analyze a multitype branching process model to study the evolution and maintenance of plasmid-mediated heterozygosity under a heterozygote advantage. We focus on an evolutionary rescue scenario in which a novel mutant allele on a plasmid must be maintained together with the wild-type allele to allow population persistance (although our results apply more generally to the maintenance of heterozygosity due to heterozygote advantage). We determine the probability of rescue and derive an analytical expression for the threshold on the fitness of heterozygotes required to overcome segregation and make rescue possible; this threshold decreases with increasing plasmids copy number. We further show that the formation of cointegrates from the fusion of plasmid copies increases the probability of rescue. Overall, our results provide a rigorous quantitative assessment of the conditions under which bacterial populations can adapt to multiple stressors through plasmid-mediated heterozygosity. Many of the results are furthermore applicable to the related problem of the maintenance of incompatible plasmids in the same cell under selection for both.
Insights
Bacterial plasmids can enable heterozygosity, boosting survival in changing environments. Higher plasmid copy numbers and cointegrate formation increase the chances of bacterial populations adapting to new challenges.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genetics
Background:
- Bacterial plasmids carry genes affecting host fitness and can harbor multiple gene alleles.
- Plasmid-mediated heterozygosity allows bacteria to possess distinct gene versions, unlike chromosomal genes.
- This heterozygosity can confer advantages under specific environmental conditions (heterozygote advantage).
Purpose of the Study:
- To model the evolution and maintenance of plasmid-mediated heterozygosity.
- To investigate conditions favoring bacterial adaptation through heterozygote advantage.
- To analyze evolutionary rescue scenarios involving plasmid-borne alleles.
Main Methods:
- Utilized a multitype branching process model.
- Analyzed the probability of evolutionary rescue.
- Derived analytical expressions for the fitness threshold required for heterozygote maintenance.
Main Results:
- Plasmid-mediated heterozygosity can be maintained under heterozygote advantage.
- Increased plasmid copy number lowers the required heterozygote fitness threshold.
- Formation of plasmid cointegrates enhances the probability of evolutionary rescue.
Conclusions:
- Bacterial populations can adapt to multiple stressors via plasmid-mediated heterozygosity.
- Plasmid copy number and cointegrate formation are critical factors for adaptation.
- Findings are applicable to maintaining incompatible plasmids and understanding bacterial adaptation.
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