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Quantification of Plasmid-Mediated Antibiotic Resistance in an Experimental Evolution Approach
Published on: December 14, 2019
Mechanistic insights into plasmid transfer inhibition in Enterobacterales by nucleoside analogues
Ilyas Alav1,2, Ayesha Ashraf1, Parisa Pordelkhaki1
1Department of Microbes, Infection and Microbiomes, School of Infection, Inflammation and Immunology, College of Medicine and Health, University of Birmingham, Birmingham, UK.
Abstract:
Antimicrobial resistance (AMR) poses a major global health threat, with carbapenem-resistant and extended-spectrum β-lactamase (ESBL)-producing Enterobacterales causing widespread infections and deaths. Much of this resistance spreads through conjugative plasmids, autonomously replicating mobile genetic elements that transfer between bacteria and carry multiple AMR genes. Targeting plasmid conjugation could therefore help curb the spread of AMR. In this study, we tested whether clinically approved nucleoside analogues (NAs) inhibited the transfer of the GFP-tagged ESBL-encoding IncK plasmid pCTgfp in Escherichia coli and the carbapenemase-encoding IncF plasmid pKpQILgfp in Klebsiella pneumoniae using flow cytometry. Alongside the known inhibitor azidothymidine (AZT), didanosine, stavudine, and trifluridine reduced plasmid conjugation in both species without affecting growth. Conversely, famciclovir and zalcitabine promoted pCTgfp conjugation in E. coli, while aciclovir and valaciclovir enhanced pKpQILgfp conjugation in K. pneumoniae. Mechanistic studies showed that plasmid conjugation-promoting NAs altered intracellular ATP levels. RNA sequencing revealed that AZT downregulated the expression of genes linked to motility in E. coli. Genetic inactivation of motility in E. coli mirrored the decrease in pCTgfp conjugation, like AZT. In K. pneumoniae, AZT upregulated genes linked to DNA damage and the SOS response, but downregulated methionine biosynthesis and metabolism genes. The exogenous addition of zinc acetate to inhibit RecA or the end product of methionine metabolism, S-adenosyl-methionine, restored pKpQILgfp conjugation in K. pneumoniae. Overall, our results indicated that existing NAs, including AZT, represent structural scaffolds for the development of potent conjugation inhibitors and highlight motility, DNA repair, and methionine metabolism as potential key factors in plasmid conjugation.
Insights
Clinically approved nucleoside analogues (NAs) can inhibit antimicrobial resistance (AMR) gene spread via plasmid conjugation. Some NAs reduced conjugation in E. coli and K. pneumoniae, offering new strategies against AMR.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Antimicrobial resistance (AMR) is a critical global health issue, exacerbated by the spread of resistance genes via conjugative plasmids.
- Targeting plasmid conjugation presents a promising strategy to combat the dissemination of AMR.
Purpose of the Study:
- To investigate the efficacy of clinically approved nucleoside analogues (NAs) in inhibiting plasmid conjugation.
- To explore the mechanisms underlying the effects of NAs on plasmid transfer and bacterial responses.
Main Methods:
- Tested nucleoside analogues for inhibition of IncK and IncF plasmid transfer in Escherichia coli and Klebsiella pneumoniae using flow cytometry.
- Conducted RNA sequencing and mechanistic studies to elucidate the molecular pathways affected by NAs.
Main Results:
- Several NAs, including azidothymidine (AZT), significantly reduced plasmid conjugation without impacting bacterial growth.
- Other NAs promoted conjugation, with mechanistic studies revealing alterations in ATP levels, bacterial motility, DNA repair pathways, and methionine metabolism.
Conclusions:
- Clinically approved nucleoside analogues serve as potential scaffolds for developing novel anti-AMR conjugation inhibitors.
- Bacterial motility, DNA repair, and methionine metabolism are identified as key factors influencing plasmid conjugation, offering new therapeutic targets.
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