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Updated: Aug 4, 2025

High-Resolution Comparison of Bacterial Conjugation Frequencies
Published on: January 10, 2019
Preceding Host History of Conjugative Resistance Plasmids Affects Intra- and Interspecific Transfer Potential from
Ilmur Jonsdottir1, Cindy Given1, Reetta Penttinen1,2
1Department of Biological and Environmental Science, Nanoscience Center, University of Jyväskylä, Jyväskylä, Finland.
Abstract:
Conjugative plasmids can confer antimicrobial resistance (AMR) to their host bacterium. The plasmids disperse even between distantly related host species, rescuing the host from otherwise detrimental effects of antibiotics. Little is known about the role of these plasmids in the spread of AMR during antibiotic treatment. One unstudied question is whether the past evolutionary history of a plasmid in a particular species creates host specificity in its rescue potential or if interspecific coevolution can improve interspecific rescues. To study this, we coevolved the plasmid RP4 under three different host settings; solely Escherichia coli or Klebsiella pneumoniae, or alternating between both of them. The ability of evolved plasmids in bacterial biofilm to rescue susceptible planktonic host bacteria of either the same or different species during beta-lactam treatment was tested. The interspecific coevolution seemed to decrease rescue potential for the RP4 plasmid, while the K. pneumoniae evolved plasmid became more host specific. Large deletion in the region encoding the mating pair formation (Tra2) apparatus was detected in the plasmids evolved with K. pneumoniae. This adaptation resulted in the exapted evolution of resistance against a plasmid-dependent bacteriophage PRD1. Further, previous studies have suggested that mutations in this region completely abolish the plasmid's ability to conjugate; however, our study shows it is not essential for conjugation but rather affects the host-specific conjugation efficiency. Overall, the results suggest that previous evolutionary history can result in the separation of host-specific plasmid lineages that may be further amplified by unselected exaptations such as phage resistance. IMPORTANCE Antimicrobial resistance (AMR) is a major global public health threat which can rapidly spread in microbial communities via conjugative plasmids. Here, we advance with evolutionary rescue via conjugation in a more natural setting, namely, biofilm, and incorporate a broad-host range plasmid RP4 to test whether intra- and interspecific host histories affect its transfer potential. Escherichia coli and Klebsiella pneumoniae hosts were seen to elicit different evolutionary influences on the RP4 plasmid, leading to clear differences in the rescue potential and underlining the significant role of the plasmid-host interactions in the spread of AMR. We also contradicted previous reports that established certain conjugal transfer genes of RP4 as essential. This work enhances the understanding of how plasmid host range evolve in different host settings and further, the potential effects it may have on the horizontal spread of AMR in complex environments such as biofilms.
Insights
Antimicrobial resistance (AMR) plasmids evolve differently based on their host bacteria. Interspecific coevolution decreased plasmid rescue potential, while host-specific evolution led to phage resistance.
Area of Science:
- Microbiology
- Evolutionary Biology
- Genetics
Background:
- Conjugative plasmids contribute to the spread of antimicrobial resistance (AMR).
- The role of plasmid evolutionary history in AMR spread during antibiotic treatment is poorly understood.
- Host specificity and interspecific coevolution's impact on plasmid-mediated bacterial rescue remain unclear.
Purpose of the Study:
- To investigate how plasmid evolutionary history influences its ability to rescue bacteria from antibiotics.
- To determine if coevolution with specific hosts (Escherichia coli, Klebsiella pneumoniae) affects plasmid transfer and rescue potential.
- To examine the impact of biofilm environments on plasmid-mediated evolutionary rescue.
Main Methods:
- Coevolution of the broad-host-range plasmid RP4 in three settings: E. coli only, K. pneumoniae only, or alternating between both species.
- Testing the ability of evolved plasmids within bacterial biofilms to rescue susceptible planktonic hosts (same or different species) during beta-lactam treatment.
- Analyzing plasmid deletions and their impact on conjugation efficiency and phage resistance.
Main Results:
- Interspecific coevolution reduced the plasmid's rescue potential.
- Plasmids evolved with K. pneumoniae showed increased host specificity and developed resistance to bacteriophage PRD1.
- Deletions in the Tra2 apparatus region affected host-specific conjugation efficiency, contradicting previous assumptions of essentiality.
Conclusions:
- Plasmid evolutionary history significantly shapes host specificity and rescue potential.
- Exaptations, like phage resistance, can arise from adaptations affecting conjugation.
- Understanding plasmid-host interactions is crucial for predicting AMR spread in complex microbial communities.
Related Concept Videos
Conjugation
Mechanism of Conjugation
Plasmids
Biofilms
Antibiotic Selection
Types of Genetic Transfer Between Organisms

