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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Selection pressure required for long-term persistence of blaCMY-2-positive IncA/C plasmids
Murugan Subbiah1, Eva M Top, Devendra H Shah
1Department of Veterinary Microbiology and Pathology, Washington State University, 402 Bustad Hall, P.O. Box 647040, Pullman, WA 99164-7040, USA.
Abstract:
Multidrug resistance blaCMY-2 plasmids that confer resistance to expanded-spectrum cephalosporins have been found in multiple bacterial species collected from different hosts worldwide. The widespread distribution of blaCMY-2 plasmids may be driven by antibiotic use that selects for the dissemination and persistence of these plasmids. Alternatively, these plasmids may persist and spread in bacterial populations in the absence of selection pressure if a balance exists among conjugative transfer, segregation loss during cell division, and fitness cost to the host. We conducted a series of experiments (both in vivo and in vitro) to study these mechanisms for three blaCMY-2 plasmids, peH4H, pAR060302, and pAM04528. Results of filter mating experiments showed that the conjugation efficiency of blaCMY-2 plasmids is variable, from <10(-7) for pAM04528 and peH4H to ∼10(-3) for pAR060302. Neither peH4H nor pAM04528 was transferred from Escherichia coli strain DH10B, but peH4H was apparently mobilized by the coresident trimethoprim resistance-encoding plasmid pTmpR. Competition studies showed that carriage of blaCMY-2 plasmids imposed a measurable fitness cost on the host bacteria both in vitro (0.095 to 0.25) and in vivo (dairy calf model). Long-term passage experiments in the absence of antibiotics demonstrated that plasmids with limited antibiotic resistance phenotypes arose, but eventually drug-sensitive, plasmid-free clones dominated the populations. Given that plasmid decay or loss is inevitable, we infer that some level of selection is required for the long-term persistence of blaCMY-2 plasmids in bacterial populations.
Insights
blaCMY-2 plasmids conferring cephalosporin resistance are widespread. Studies show these plasmids require antibiotic selection for long-term persistence, as they impose a fitness cost and are eventually lost without selection.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- blaCMY-2 plasmids confer resistance to expanded-spectrum cephalosporins.
- These plasmids are found in diverse bacterial species globally.
- Their widespread distribution may be linked to antibiotic use or intrinsic bacterial mechanisms.
Purpose of the Study:
- Investigate the mechanisms of blaCMY-2 plasmid dissemination and persistence.
- Evaluate the role of conjugative transfer, segregation, and host fitness costs.
- Determine the necessity of antibiotic selection for long-term plasmid maintenance.
Main Methods:
- Conducted in vitro and in vivo experiments using three blaCMY-2 plasmids (peH4H, pAR060302, pAM04528).
- Assessed conjugation efficiency via filter mating experiments.
- Performed competition studies and long-term passage experiments in the absence of antibiotics.
Main Results:
- Conjugation efficiency varied significantly among the tested plasmids.
- Mobilization of one plasmid by a coresident plasmid was observed.
- blaCMY-2 plasmid carriage imposed a fitness cost on host bacteria in vitro and in vivo.
- Long-term antibiotic-free passage led to the dominance of plasmid-free sensitive clones.
Conclusions:
- Plasmid decay and loss are significant factors in bacterial populations.
- Conjugative transfer and fitness costs influence plasmid dynamics.
- Antibiotic selection pressure is likely required for the sustained persistence of blaCMY-2 plasmids.
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