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Detection of Horizontal Gene Transfer Mediated by Natural Conjugative Plasmids in E. coli
Published on: March 24, 2023
Identification and genetic characterization of two conjugative plasmids that confer azithromycin resistance in
Miaomiao Xie1, Kaichao Chen1, Edward Wai-Chi Chan2
1Department of Infectious Diseases and Public Health, Jockey Club College of Veterinary Medicine and Life Sciences, City University of Hong Kong, Kowloon, Hong Kong.
Abstract:
With the development of multidrug resistance in Salmonella spp. in recent years, ciprofloxacin, ceftriaxone, and azithromycin have become the principal antimicrobial agents used for the treatment of Salmonella infections. The underlying mechanisms of plasmid-mediated ciprofloxacin and ceftriaxone resistance have attracted extensive research interest, but not much is focused on azithromycin resistance in Salmonella. In this study, we investigated the genetic features of two conjugative plasmids and a non-transferable virulence plasmid that encode azithromycin resistance in food-borne Salmonella strains. We showed that the azithromycin resistance phenotype of these strains was conferred by erm(B) gene and/or the complete genetic structure IS26-mph(A)-mrx-mphR-IS6100. Comparative genetic analysis showed that these conjugative plasmids might originate from Escherichia coli and play a role in the rapid dissemination of azithromycin resistance in Salmonella. These conjugative plasmids may also serve as a reservoir of antimicrobial resistance (AMR) genes in Salmonella in which these AMR genes may be acquired by the virulence plasmids of Salmonella via genetic transposition events. Importantly, the formation of a novel macrolide-resistance and virulence-encoding plasmid, namely pS1380-118 kb, was observed in this study. This plasmid was found to exhibit transmission potential and pose a serious health threat as the extensive transmission of azithromycin resistant and virulent Salmonella strains would further compromise the effectiveness of treatment for salmonellosis. Further surveillance and research on the dissemination and evolution routes of pS1380-118kb-like plasmids in potential human pathogens of the family of Enterobacteriaceae are necessary.
Insights
Multidrug-resistant Salmonella strains are increasingly common. This study identified novel plasmids conferring azithromycin resistance, highlighting a significant threat to public health and the need for further research.
Area of Science:
- Microbiology
- Genetics
- Antimicrobial Resistance
Background:
- Rising multidrug resistance in Salmonella necessitates effective treatment options.
- Azithromycin resistance mechanisms in Salmonella remain under-researched compared to other antibiotics.
- Plasmid-mediated resistance is a key driver of antimicrobial resistance (AMR) spread.
Purpose of the Study:
- To investigate the genetic basis of azithromycin resistance in food-borne Salmonella.
- To characterize the plasmids encoding azithromycin resistance and their potential for dissemination.
- To identify novel resistance-virulence plasmids and assess their public health implications.
Main Methods:
- Conjugative and non-transferable plasmid analysis in food-borne Salmonella strains.
- Identification of resistance genes, including erm(B) and IS26-mph(A)-mrx-mphR-IS6100.
- Comparative genetic analysis of plasmids and assessment of their origin and transferability.
Main Results:
- Azithromycin resistance was conferred by erm(B) and/or the IS26-mph(A)-mrx-mphR-IS6100 genetic structure.
- Conjugative plasmids, potentially originating from Escherichia coli, facilitate azithromycin resistance spread in Salmonella.
- A novel plasmid, pS1380-118kb, encoding both macrolide resistance and virulence factors was identified, exhibiting transmission potential.
Conclusions:
- Conjugative plasmids act as reservoirs for AMR genes, which can transfer to Salmonella virulence plasmids.
- The emergence of novel resistance-virulence plasmids like pS1380-118kb poses a serious threat to public health.
- Further surveillance of these plasmids in Enterobacteriaceae is crucial to understand dissemination and evolution.
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