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Updated: Jul 14, 2026

Methodology for the Study of Horizontal Gene Transfer in Staphylococcus aureus
Published on: March 10, 2017
Interaction of the GraRS two-component system with the VraFG ABC transporter to support vancomycin-intermediate
Michael Meehl1, Silvia Herbert, Friedrich Götz
1Department of Microbiology and Immunology, Dartmouth Medical School, Hanover, NH 03755, USA.
Abstract:
Current treatment for serious infections caused by methicillin-resistant Staphylococcus aureus relies heavily upon the glycopeptide antibiotic vancomycin. Unfortunately, this practice has led to an intermediate resistance phenotype that is particularly difficult to treat in invasive staphylococcal diseases, such as septicemia and its metastatic complications, including endocarditis. Although the vancomycin-intermediate resistance phenotype has been linked to abnormal cell wall structures and autolytic rates, the corresponding genetic changes have not been fully elucidated. Previously, whole-genome array studies listed numerous genes that are overexpressed in vancomycin-intermediate sensitive strains, including graRS (SACOL0716 to -0717), encoding a two-component regulatory system (TCRS), as well as the adjacent vraFG (SACOL0718 to -0720), encoding an ATP-binding cassette (ABC) transporter; but the exact contribution of these genes to increased vancomycin resistance has not been defined. In this study, we showed that isogenic strains with mutations in genes encoding the GraRS TCRS and the VraFG ABC transporter are hypersensitive to vancomycin as well as polymyxin B. Moreover, GraRS regulates the expression of the adjacent VraFG pump, reminiscent of gram-positive bacteriocin-immunity regulons. Mutations of graRS and vraFG also led to increased autolytic rates and a more negative net surface charge, which may explain, in part, to their increased sensitivity to cationic antimicrobial peptides. Taken together, these data reveal an important genetic mediator to the vancomycin-intermediate S. aureus phenotype and may hold clues to the selective pressures on staphylococci upon exposure to selective cationic peptide antibiotics used in clinical practice.
Insights
Mutations in the GraRS two-component regulatory system and VraFG transporter genes increase susceptibility to vancomycin in methicillin-resistant Staphylococcus aureus. These findings identify key genetic factors contributing to vancomycin intermediate resistance.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) infections are a significant global health threat.
- Vancomycin is a critical antibiotic for treating serious MRSA infections, but vancomycin-intermediate resistance is emerging.
- The genetic underpinnings of vancomycin intermediate resistance in MRSA remain incompletely understood.
Purpose of the Study:
- To investigate the role of the GraRS two-component regulatory system (TCRS) and the VraFG ATP-binding cassette (ABC) transporter in vancomycin resistance in MRSA.
- To elucidate the genetic mechanisms contributing to the vancomycin-intermediate resistance phenotype.
Main Methods:
- Construction and characterization of isogenic MRSA strains with mutations in graRS and vraFG genes.
- Assessment of bacterial susceptibility to vancomycin and polymyxin B.
- Analysis of gene expression regulation between GraRS and VraFG.
- Evaluation of bacterial autolytic rates and net surface charge.
Main Results:
- Isogenic MRSA strains with mutations in graRS and vraFG exhibited hypersensitivity to vancomycin and polymyxin B.
- The GraRS TCRS was found to regulate the expression of the adjacent VraFG ABC transporter.
- Mutations in graRS and vraFG resulted in increased bacterial autolysis and a more negative surface charge.
Conclusions:
- The GraRS TCRS and VraFG ABC transporter play a crucial role in mediating vancomycin intermediate resistance in MRSA.
- These genetic elements influence bacterial cell wall structure and surface properties, impacting susceptibility to antibiotics.
- Understanding these mechanisms may offer insights into selective pressures and guide the development of new therapeutic strategies against MRSA.
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