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Pordelkhaki, P.

Publications and source records attributed to Pordelkhaki, P..

2 recordsLinked to original sources

Natural products from food sources can alter the spread of AMR plasmids in Enterobacterales

Antimicrobial resistance (AMR) poses a significant threat to global public health. Notably, resistance to carbapenem and extended-spectrum {beta}-lactam antibiotics in Gram-negative bacteria is a major impediment for the treatment of infections. Genes responsible for resistance to these antibiotics are frequently carried on plasmids, which can transfer between bacteria. Therefore, exploring strategies to prevent this transfer and/or the prevalence of AMR plasmids is timely and pertinent. Here, we show that certain natural product extracts and associated pure compounds can reduce the transmission of AMR plasmids into new bacterial hosts. Using our established high-throughput fluorescence-based screen we found that the natural products were more active in reducing transmission of the IncK plasmid pCT in Escherichia coli ST131, compared to Klebsiella pneumoniae Ecl8 carrying the IncFII plasmid pKpQIL. Furthermore, we found that the natural product rottlerin was more active in K. pneumoniae than in E. coli. Importantly, rottlerin was also associated with a reduced number of transconjugant bacteria in a clinical K. pneumoniae isolate harbouring a blaNDM-1 plasmid. Together, these results demonstrate the potential of natural products as promising anti-plasmid agents.

microbiology↗

Metal complexes and conjugation: Harnessing the power of cobalt complexes to curtail plasmid transfer

BackgroundAntimicrobial resistance genes (ARG), such as extended spectrum {beta}-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. Here, we assessed the effect of four previously characterised bis(N-picolinamido)cobalt(II) complexes on the conjugative transfer of plasmids in Escherichia coli and Klebsiella pneumoniae. MethodsLiquid broth and solid agar conjugation assays were used to measure complex activity on four plasmids in E. coli. Additionally, the effect of cobalt complexes was tested on the transmission of the fluorescently tagged extended spectrum {beta}-lactamase encoding pCTgfp plasmid in E. coli and carbapenemase encoding pKpQILgfp plasmid in K. pneumoniae, using flow cytometry. ResultsAntimicrobial susceptibility testing of cobalt complexes revealed no antibacterial activity. The cobalt complexes significantly reduced conjugative transfer of RP4, R6K, and R388 plasmids on solid agar in E. coli and pKpQILgfp transmission in K. pneumoniae. None affected conjugative transfer of pKM101 or transmission of fluorescently tagged pCT in E. coli. The cobalt complexes had no effect on plasmid persistence, suggesting that they target conjugation rather than plasmid prevalence. ConclusionsTo the best of our knowledge, this is the first study to report reduced transmission 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 conjugation inhibitors to reduce prevalence of AMR and/or virulence genes in animals and humans. SignificanceAntimicrobial resistance is a growing problem that poses a significant threat to modern medicine. Some of the most problematic resistance genes are carried on genetic elements, called plasmids, that can spread between bacteria. While our understanding of the mechanisms and drivers of gene transfer amongst bacteria is increasing, we lack effective tools to slow down/control these processes. Here we demonstrate for the first time that novel cobalt-based compounds have anti-plasmid activity on a subset of E. coli plasmids, and are extremely potent in K. pneumoniae carrying a clinical carbapenem-resistance plasmid, without impacting plasmid maintenance. This finding forms the foundations of a potential strategy to control the transfer of genes within Gram-negative bacteria, which has implications for AMR and virulence.

microbiology↗