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Updated: Jan 19, 2026

Subcutaneous Infection of Methicillin Resistant Staphylococcus Aureus MRSA
Published on: February 9, 2011
Evolution of a 72-Kilobase Cointegrant, Conjugative Multiresistance Plasmid in Community-Associated
Karina Yui Eto1,2,3, Neville Firth4, Amy M Davis2,3
1School of Molecular Sciences, University of Western Australia, Crawley, WA, Australia.
Abstract:
Horizontal transfer of plasmids encoding antimicrobial resistance and virulence determinants has been instrumental in Staphylococcus aureus evolution, including the emergence of community-associated methicillin-resistant S. aureus (CA-MRSA). In the early 1990s, the first CA-MRSA strain isolated in Western Australia (WA), WA-5, encoded cadmium, tetracycline, and penicillin resistance genes on plasmid pWBG753 (∼30 kb). WA-5 and pWBG753 appeared only briefly in WA; however, fusidic acid resistance plasmids related to pWBG753 were also present in the first European CA-MRSA isolates at the time. Here, we characterize a 72-kb conjugative plasmid, pWBG731, present in multiresistant WA-5-like clones from the same period. pWBG731 was a cointegrant formed from pWBG753 and a pWBG749 family conjugative plasmid. pWBG731 carried mupirocin, trimethoprim, cadmium, and penicillin resistance genes. The stepwise evolution of pWBG731 likely occurred through the combined actions of IS257, IS257-dependent miniature inverted-repeat transposable elements (MITEs), and the BinL resolution system of the β-lactamase transposon Tn552 An evolutionarily intermediate ∼42-kb nonconjugative plasmid, pWBG715, possessed the same resistance genes as pWBG731 but retained an integrated copy of the small tetracycline resistance plasmid pT181. IS257 likely facilitated the replacement of pT181 with conjugation genes on pWBG731, thus enabling autonomous transfer. Like conjugative plasmid pWBG749, pWBG731 also mobilized nonconjugative plasmids carrying oriT mimics. It seems likely that pWBG731 represents the product of multiple recombination events between the WA-5 pWBG753 plasmid and other mobile genetic elements present in indigenous community-associated methicillin-sensitive S. aureus (CA-MSSA) isolates. The molecular evolution of pWBG731 saliently illustrates how diverse mobile genetic elements can together facilitate rapid accrual and horizontal dissemination of multiresistance in S. aureus CA-MRSA.
Insights
This study reveals how mobile genetic elements drive the rapid evolution and spread of antibiotic resistance in Staphylococcus aureus. Researchers characterized plasmid pWBG731, illustrating the combined actions of transposons and resolution systems in accumulating multiple resistance genes.
Area of Science:
- Molecular biology
- Microbiology
- Genetics
Background:
- Horizontal plasmid transfer is key to Staphylococcus aureus evolution, including community-associated methicillin-resistant S. aureus (CA-MRSA) emergence.
- Early CA-MRSA strains like WA-5 carried resistance genes on plasmids such as pWBG753.
- Related fusidic acid resistance plasmids were found in early European CA-MRSA isolates.
Purpose of the Study:
- To characterize the 72-kb conjugative plasmid pWBG731 found in multiresistant WA-5-like clones.
- To elucidate the molecular evolution and mechanisms of multiresistance acquisition in Staphylococcus aureus.
Main Methods:
- Plasmid characterization, including sequence analysis of pWBG731 and its relationship to pWBG753 and pWBG749.
- Identification of resistance genes (mupirocin, trimethoprim, cadmium, penicillin) and mobile genetic elements (IS257, MITEs, Tn552).
- Analysis of plasmid cointegration, transposition, and mobilization events.
Main Results:
- pWBG731 is a cointegrant of pWBG753 and a conjugative plasmid, carrying multiple resistance genes.
- An intermediate plasmid, pWBG715, showed resistance genes but lacked conjugation genes, suggesting a stepwise evolution.
- IS257 and other mobile elements facilitated the replacement of resistance genes and acquisition of conjugation, enabling autonomous transfer and mobilization of other plasmids.
Conclusions:
- pWBG731 evolved through recombination events between existing plasmids and mobile genetic elements in community-associated methicillin-sensitive S. aureus (CA-MSSA).
- The study highlights how diverse mobile genetic elements cooperate to rapidly acquire and disseminate multiresistance in S. aureus.
- This molecular evolution provides insights into the emergence and spread of CA-MRSA.
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