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Updated: Jun 29, 2025

High-Resolution Comparison of Bacterial Conjugation Frequencies
Published on: January 10, 2019
Cobalt complexes modulate plasmid conjugation in Escherichia coli and Klebsiella pneumoniae
Ilyas Alav1, Parisa Pordelkhaki1, Pedro Ernesto de Resende2
1Institute of Microbiology and Infection, College of Medical and Dental Sciences, University of Birmingham, Birmingham, B15 2TT, UK.
Abstract:
Antimicrobial resistance genes (ARG), such as extended-spectrum β-lactamase (ESBL) and carbapenemase genes, are commonly carried on plasmids. Plasmids can transmit between bacteria, disseminate globally, and cause clinically important resistance. Therefore, targeting plasmids could reduce ARG prevalence, and restore the efficacy of existing antibiotics. Cobalt complexes possess diverse biological activities, including antimicrobial and anticancer properties. However, their effect on plasmid conjugation has not been explored yet. Here, we assessed the effect of four previously characterised bis(N-picolinamido)cobalt(II) complexes lacking antibacterial activity on plasmid conjugation in Escherichia coli and Klebsiella pneumoniae. Antimicrobial susceptibility testing of these cobalt complexes confirmed the lack of antibacterial activity in E. coli and K. pneumoniae. Liquid broth and solid agar conjugation assays were used to screen the activity of the complexes on four archetypical plasmids in E. coli J53. The cobalt complexes significantly reduced the conjugation of RP4, R6K, and R388 plasmids, but not pKM101, on solid agar in E. coli J53. Owing to their promising activity, the impact of cobalt complexes was tested on the conjugation of fluorescently tagged extended-spectrum β-lactamase encoding pCTgfp plasmid in E. coli and carbapenemase encoding pKpQILgfp plasmid in K. pneumoniae, using flow cytometry. The complexes significantly reduced the conjugation of pKpQILgfp in K. pneumoniae but had no impact on pCTgfp conjugation in E. coli. The cobalt complexes did not have plasmid-curing activity, suggesting that they target conjugation rather than plasmid stability. To our knowledge, this is the first study to report reduced conjugation of clinically relevant plasmids with cobalt complexes. These cobalt complexes are not cytotoxic towards mammalian cells and are not antibacterial, therefore they could be optimised and employed as inhibitors of plasmid conjugation.
Insights
Cobalt complexes significantly reduced plasmid conjugation, a key mechanism for spreading antimicrobial resistance genes (ARG). These non-antibacterial, non-cytotoxic compounds show potential for developing new strategies against antibiotic resistance.
Area of Science:
- Microbiology
- Medicinal Chemistry
Background:
- Antimicrobial resistance genes (ARG) are often plasmid-borne, facilitating bacterial resistance and antibiotic inefficacy.
- Targeting plasmid transmission is a potential strategy to combat ARG spread and restore antibiotic effectiveness.
Purpose of the Study:
- To investigate the effect of cobalt complexes on plasmid conjugation in bacteria.
- To assess the potential of cobalt complexes as inhibitors of plasmid-mediated antimicrobial resistance.
Main Methods:
- Four bis(N-picolinamido)cobalt(II) complexes were tested for their effect on plasmid conjugation in Escherichia coli and Klebsiella pneumoniae.
- Conjugation assays (liquid broth, solid agar) and flow cytometry were employed to quantify plasmid transfer.
- Antimicrobial susceptibility and cytotoxicity assays were performed.
Main Results:
- Cobalt complexes significantly reduced the conjugation of several plasmids (RP4, R6K, R388, pKpQILgfp) in E. coli and K. pneumoniae.
- The complexes did not exhibit antibacterial activity or plasmid-curing effects.
- No significant impact was observed on pKM101 or pCTgfp plasmid conjugation.
Conclusions:
- Cobalt complexes can inhibit plasmid conjugation without affecting bacterial viability or plasmid stability.
- These findings suggest cobalt complexes could be developed into novel agents to control the spread of antimicrobial resistance.
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