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Updated: May 10, 2025

Testing the Role of Multicopy Plasmids in the Evolution of Antibiotic Resistance
Published on: May 2, 2018
The fitness connection of antibiotic resistance
1Independent Researcher, Seattle, WA, United States.
Abstract:
More than three decades ago multidrug-resistant (MDR) clones of the pathogens: Staphylococcus aureus, Escherichia coli, Klebsiella pneumoniae, Clostridioides difficile, Enterococcus faecium, Pseudomonas aeruginosa and Acinetobacter baumannii have started to disseminate across wide geographical areas. A characteristic feature of all these MDR lineages is the carriage of some mutations in the quinolone resistance-determining regions (QRDRs) of DNA gyrase and topoisomerase IV which besides conferring resistance to fluoroquinolones are associated with a fitness benefit. Several lines of evidence strongly suggest that extra fitness conferred by these mutations facilitated the dissemination of the international MDR lineages. MDR pathogens require extra energy to cover the fitness cost conferred by the excess antibiotic resistance gene cargo. However, extra energy generated by upgraded metabolic activity was demonstrated to increase the uptake of antibiotics enhancing susceptibility. Accordingly, MDR bacteria need additional positive fitness schemes which, similarly to the QRDR advantage, will not compromise resistance. Some of these, not clone-specific effects are large genomes, the carriage of low-cost plasmids, the transfer of plasmid genes to the chromosome, the application of weak promoters in integrons and various techniques for the economic control of the activity of the integrase enzyme including a highly sophisticated system in A. baumannii. These impacts - among others - will confer a fitness advantage promoting the spread of MDR pathogens. However, even the potential of extra fitness generated by the combined effect of various schemes is not without limit and virulence-related genes or less relevant antibiotic resistance gene cargoes will often be sacrificed to permit the acquisition of high-priority resistance determinants. Accordingly major MDR clone strains are usually less virulent than susceptible isolates. In summary, a fitness approach to the research of antibiotic resistance is very useful since the fitness status of MDR bacteria seem to profoundly impact the capacity to disseminate in the healthcare setting.
Insights
Multidrug-resistant (MDR) bacteria spread due to mutations providing fluoroquinolone resistance and fitness benefits. MDR pathogens utilize additional strategies, like large genomes and plasmid integration, to maintain resistance without compromising fitness, impacting healthcare dissemination.
Area of Science:
- Microbiology
- Genetics
- Evolutionary Biology
Background:
- Multidrug-resistant (MDR) pathogens, including *Staphylococcus aureus* and *Escherichia coli*, have disseminated globally over three decades.
- A key feature of these MDR lineages is mutations in quinolone resistance-determining regions (QRDRs) of DNA gyrase and topoisomerase IV.
- These QRDR mutations confer fluoroquinolone resistance and provide a significant fitness advantage, facilitating pathogen spread.
Purpose of the Study:
- To investigate the fitness strategies employed by MDR pathogens.
- To understand how MDR bacteria overcome the fitness costs associated with antibiotic resistance.
- To explore the impact of fitness on the dissemination of MDR pathogens in healthcare settings.
Main Methods:
- Analysis of genetic mutations in QRDRs of DNA gyrase and topoisomerase IV.
- Examination of metabolic activity and energy generation in MDR bacteria.
- Investigation of additional fitness schemes, including genome size, plasmid carriage, gene integration, and promoter regulation.
Main Results:
- QRDR mutations confer both fluoroquinolone resistance and a fitness benefit, driving MDR lineage dissemination.
- MDR pathogens utilize various "positive fitness schemes" to offset resistance costs, such as large genomes and plasmid gene integration.
- While these schemes enhance fitness, they can lead to reduced virulence, with MDR strains often being less virulent than susceptible isolates.
Conclusions:
- The fitness status of MDR bacteria is a critical factor influencing their dissemination in healthcare environments.
- Understanding these fitness advantages is crucial for developing effective strategies against the spread of antibiotic resistance.
- A fitness-centric approach is essential for advancing research into antibiotic resistance mechanisms and control.
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