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Characterization of a Pathogenic Escherichia coli Strain Derived from Oreochromis spp. Farms Using Whole-Genome Sequencing
Published on: December 23, 2022
Diversity of P1 phage-like elements in multidrug resistant Escherichia coli
Carola Venturini1, Tiziana Zingali2, Ethan R Wyrsch2
1Centre for Infectious Diseases and Microbiology, The Westmead Institute for Medical Research, The University of Sydney and Westmead Hospital, Sydney, NSW, Australia. carola.venturini@sydney.edu.au.
Abstract:
The spread of multidrug resistance via mobile genetic elements is a major clinical and veterinary concern. Pathogenic Escherichia coli harbour antibiotic resistance and virulence genes mainly on plasmids, but also bacteriophages and hybrid phage-like plasmids. In this study, the genomes of three E. coli phage-like plasmids, pJIE250-3 from a human E. coli clinical isolate, pSvP1 from a porcine ETEC O157 isolate, and pTZ20_1P from a porcine commensal E. coli, were sequenced (PacBio RSII), annotated and compared. All three elements are coliphage P1 variants, each with unique adaptations. pJIE250-3 is a P1-derivative that has lost lytic functions and contains no accessory genes. In pTZ20_1P and pSvP1, a core P1-like genome is associated with insertion sequence-mediated acquisition of plasmid modules encoding multidrug resistance and virulence, respectively. The transfer ability of pTZ20_1P, carrying antibiotic resistance markers, was also tested and, although this element was not able to transfer by conjugation, it was able to lysogenize a commensal E. coli strain with consequent transfer of resistance. The incidence of P1-like plasmids (~7%) in our E. coli collections correlated well with that in public databases. This study highlights the need to investigate the contribution of phage-like plasmids to the successful spread of antibiotic resistant pathotypes.
Insights
Phage-like plasmids in Escherichia coli carry antibiotic resistance and virulence genes. These P1 variants can spread resistance by lysogenizing other bacteria, highlighting their role in multidrug resistance.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- The spread of multidrug resistance (MDR) is a significant global health concern.
- Mobile genetic elements, including plasmids and bacteriophages, facilitate the dissemination of antibiotic resistance and virulence genes in pathogenic bacteria like Escherichia coli.
Purpose of the Study:
- To sequence, annotate, and compare the genomes of three diverse E. coli phage-like plasmids.
- To investigate the genetic adaptations and mechanisms of resistance transfer for these elements.
Main Methods:
- Whole-genome sequencing using PacBio RSII technology.
- Bioinformatic analysis for genome annotation and comparative genomics.
- Experimental testing of plasmid transferability via conjugation and lysogenization.
Main Results:
- Three coliphage P1 variants (pJIE250-3, pSvP1, pTZ20_1P) were characterized, each with unique genomic features.
- pTZ20_1P and pSvP1 acquired multidrug resistance and virulence modules via insertion sequences.
- pTZ20_1P transferred antibiotic resistance markers through lysogenization, not conjugation.
Conclusions:
- Phage-like plasmids are significant contributors to the spread of antibiotic resistance in E. coli.
- Understanding these elements is crucial for combating the rise of antibiotic-resistant pathogens.
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