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Updated: Dec 23, 2025

Detection of Horizontal Gene Transfer Mediated by Natural Conjugative Plasmids in E. coli
Published on: March 24, 2023
Plasmids and genes contributing to high-level quinolone resistance in Escherichia coli
Laura Vinué1, Mohamad R A Sater2, Ian C Herriott2
1Massachusetts General Hospital, Boston, Massachusetts, USA.
Introduction:
The importance of plasmid-mediated quinolone resistance (PMQR) in Enterobacterales and its high incidence has been emphasised many times. However, a clinical strain carrying more than two PMQR genes is rare. This study sequenced plasmid transconjugants from a donor strain carrying four different PMQR genes to establish their genetic locations.
Methods:
An Escherichia coli clinical strain displayed remarkable quinolone resistance with a ciprofloxacin MIC of 1024 mg/L carrying four PMQR genes: qnrA1, qepA1, aac(6')1b-cr and oqxAB. When outcrossed to Escherichia coli J53 AziR, different PMQR genes were transferred and the resulting strains 7C and 8C were chosen for further characterisation. Plasmids were extracted and sequenced by the Illumina and Oxford Nanopore Technologies platforms. S1 nuclease-PFGE was used to estimate the number and size of plasmids.
Results:
The parental strain had three plasmid bands, as determined by PFGE. Transconjugant 8C obtained three plasmids: pMG336 (162 647 bp, F18:A-:B1:C4) carrying oqxAB; pMG335 carrying qepA1 (73 874 bp, F2:A-:B-); and pMG334 (59 724 bp, IncN (ST5)) with qnrA1 and aac(6')1b-cr. Interestingly, strain 7C obtained plasmid pMG333 (134 435 bp), which was not present in the parental strain but was an IncN-IncF cointegrate of plasmids pMG334 and pMG335 linked via insertion sequence IS26.
Conclusion:
This study described the complete nucleotide sequence of three plasmids carrying four PMQR genes in a single strain and the plasmid profile obtained after outcrosses. In addition, it described a cointegrate of two plasmids formed with flanking insertion sequences.
Insights
This study details plasmid sequencing from a highly quinolone-resistant E. coli strain. It identifies the genetic locations of four plasmid-mediated quinolone resistance (PMQR) genes and describes a novel cointegrate plasmid formed by insertion sequences.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Plasmid-mediated quinolone resistance (PMQR) is a significant concern in Enterobacterales.
- Clinical strains with multiple PMQR genes are uncommon, necessitating further investigation into their genetic basis.
Purpose of the Study:
- To determine the genetic locations of four distinct PMQR genes within a single clinical Escherichia coli strain.
- To characterize the plasmids carrying these resistance genes after transfer to a susceptible host.
Main Methods:
- Whole-genome sequencing of plasmid transconjugants using Illumina and Oxford Nanopore Technologies.
- Plasmid profiling and size estimation via S1 nuclease pulsed-field gel electrophoresis (PFGE).
- Analysis of plasmid structures, including cointegrate formation.
Main Results:
- The parental strain harbored three plasmids, with transconjugant 8C receiving three distinct plasmids carrying the four PMQR genes (oqxAB, qepA1, qnrA1, and aac(6')1b-cr).
- Transconjugant 7C acquired a novel IncN-IncF cointegrate plasmid (pMG333) formed by the ligation of two other plasmids (pMG334 and pMG335) via IS26 insertion sequences.
- Complete nucleotide sequences of the plasmids were determined, revealing their genetic architecture and resistance gene content.
Conclusions:
- This study provides the complete nucleotide sequences of plasmids harboring multiple PMQR genes in a single strain.
- It elucidates the plasmid profiles resulting from genetic transfer and describes the formation of a cointegrate plasmid mediated by insertion sequences.
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