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Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
Mutation-based mechanism and evolution of the potent multidrug efflux pump RE-CmeABC in Campylobacter
Lei Dai1, Zuowei Wu1, Orhan Sahin2
1Department of Veterinary Microbiology and Preventive Medicine, College of Veterinary Medicine, Iowa State University, Ames, IA 50011.
Abstract:
The resistance-nodulation-cell division (RND) superfamily of multidrug efflux systems are important players in mediating antibiotic resistance in gram-negative pathogens. Campylobacter jejuni, a major enteric pathogen, utilizes an RND-type transporter system, CmeABC, as the primary mechanism for extrusion of various antibiotics. Recently, a functionally potent variant of CmeABC (named RE-CmeABC) emerged in clinical Campylobacter isolates, conferring enhanced resistance to multiple antibiotic classes. Despite the clinical importance of RE-CmeABC, the molecular mechanisms for its functional gain and its evolutionary trajectory remain unknown. Here, we demonstrated that amino acid substitutions in RE-CmeB (inner membrane transporter), but not in RE-CmeA (periplasmic protein) and RE-CmeC (outer membrane protein), in conjunction with a nucleotide mutation in the promoter region of the efflux operon, are responsible for the functional gain of the multidrug efflux system. We also showed that RE-cmeABC is emerging globally and distributed in genetically diverse C. jejuni strains, suggesting its possible spread by horizontal gene transfer. Notably, many of RE-cmeABC harboring isolates were associated with the human host including strains from large disease outbreaks, indicating the clinical relevance and significance of RE-CmeABC. Evolutionary analysis indicated that RE-cmeB likely originated from Campylobacter coli, but its expansion mainly occurred in C. jejuni, possibly driven by antibiotic selection pressure. Additionally, RE-cmeB, but not RE-cmeA and RE-cmeC, experienced a selective sweep and was progressing to be fixed during evolution. Together, these results identify a mutation-based mechanism for functional gain in RE-CmeABC and reveal the key role of RE-CmeB in facilitating Campylobacter adaptation to antibiotic selection.
Insights
A new variant of the CmeABC efflux pump in Campylobacter jejuni, RE-CmeABC, confers enhanced antibiotic resistance due to mutations in RE-CmeB and its promoter. This variant is spreading globally and clinically relevant.
Area of Science:
- Microbiology
- Molecular Biology
- Evolutionary Biology
Background:
- The resistance-nodulation-cell division (RND) superfamily mediates antibiotic resistance in gram-negative pathogens.
- Campylobacter jejuni uses the RND transporter CmeABC for antibiotic extrusion.
- A potent variant, RE-CmeABC, confers enhanced multidrug resistance in clinical isolates.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the functional gain of RE-CmeABC.
- To investigate the evolutionary trajectory and global spread of RE-CmeABC.
Main Methods:
- Analysis of amino acid substitutions in RE-CmeB, RE-CmeA, and RE-CmeC.
- Identification of nucleotide mutations in the promoter region of the efflux operon.
- Global surveillance and evolutionary analysis of RE-cmeABC distribution in Campylobacter strains.
Main Results:
- Amino acid substitutions in RE-CmeB and a promoter mutation drive RE-CmeABC's enhanced function.
- RE-cmeABC is globally distributed in diverse C. jejuni strains, suggesting horizontal gene transfer.
- RE-cmeABC-harboring isolates are linked to human infections and outbreaks, highlighting clinical significance.
Conclusions:
- A mutation-based mechanism underlies RE-CmeABC functional gain, primarily involving RE-CmeB.
- RE-CmeB's origin in C. coli and expansion in C. jejuni, likely driven by antibiotic pressure, is revealed.
- RE-CmeB is undergoing selective sweep, indicating its crucial role in Campylobacter's antibiotic resistance adaptation.
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