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Transfer of plasmid-borne aminoglycoside-resistance determinants in staphylococci
Abstract:
Aminoglycoside-resistance determinants in staphylococci are borne on conjugative and non-conjugative plasmids. The conjugative plasmids were found in methicillin-resistant strains of Staphylococcus aureus isolated recently in Darwin and Sydney, Australia and in Houston, Texas, USA. These plasmids and the class-2 conjugative plasmid reported by Archer and Johnston (1983) had similar patterns of EcoR1 restriction-endonuclease fragments, encoded resistance to gentamicin, kanamycin and neomycin, transferred to a non-lysogenic recipient in conditions that promoted close cell-to-cell contact and mobilised a small, non-conjugative plasmid. A further plasmid, pWG14, encoding resistance to kanamycin, neomycin, streptomycin, erythromycin and lincomycin, also displayed conjugative properties but did not mobilise the small, non-conjugative plasmid. The transfer frequency of all conjugative plasmids was stimulated by the addition of polyethylene glycol, particularly at concentrations above 20%, to mixtures of donor and recipient broth cultures. Polyethylene glycol appeared to promote close cell-to-cell contact between donor and recipient cells. A representative of the most common aminoglycoside-resistance plasmids in Australian isolates of methicillin-resistant S. aureus was non-conjugative and transferred by a bacteriophage-mediated system to a lysogenic recipient. With the exception of plasmid pWG14, the conjugative plasmids were also transferred by a bacteriophage-mediated system. Furthermore, cultural conditions that favoured conjugative transfer of plasmids inhibited bacteriophage-mediated transfer and vice versa. The efficacy of the two transfer systems for analysing the plasmids of gentamicin-resistant, methicillin-resistant isolates of S. aureus has been compared.
Insights
Aminoglycoside resistance in Staphylococcus aureus is often plasmid-borne. Researchers compared conjugative and bacteriophage-mediated plasmid transfer systems in methicillin-resistant S. aureus, finding transfer efficiency varied with conditions.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Aminoglycoside resistance in staphylococci is frequently mediated by plasmids.
- Methicillin-resistant Staphylococcus aureus (MRSA) poses a significant public health threat.
- Understanding plasmid transfer mechanisms is crucial for controlling antibiotic resistance.
Purpose of the Study:
- To characterize aminoglycoside-resistance plasmids in methicillin-resistant Staphylococcus aureus.
- To compare the efficacy of conjugative and bacteriophage-mediated plasmid transfer systems.
- To investigate the role of polyethylene glycol in promoting plasmid conjugation.
Main Methods:
- Isolation and characterization of conjugative and non-conjugative plasmids from MRSA.
- Plasmid transfer experiments using both conjugation (promoted by polyethylene glycol) and bacteriophage-mediated systems.
- Analysis of plasmid restriction fragment patterns (EcoR1) and antibiotic resistance profiles.
Main Results:
- Conjugative plasmids conferring resistance to gentamicin, kanamycin, and neomycin were identified in MRSA strains from Australia and the USA.
- Polyethylene glycol significantly enhanced conjugative plasmid transfer frequency by promoting cell-to-cell contact.
- A common non-conjugative aminoglycoside-resistance plasmid in Australian MRSA was transferred via a bacteriophage-mediated system.
Conclusions:
- Both conjugative and bacteriophage-mediated systems are effective for transferring aminoglycoside-resistance plasmids in MRSA.
- Transfer system efficacy is influenced by cultural conditions, with inverse relationships observed between conjugation and bacteriophage-mediated transfer.
- The findings provide insights into the dissemination of antibiotic resistance genes within Staphylococcus aureus populations.