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Updated: Jul 3, 2026

Multiplex PCR Assay for Typing of Staphylococcal Cassette Chromosome Mec Types I to V in Methicillin-resistant Staphylococcus aureus
Published on: September 5, 2013
Genomic analysis reveals a point mutation in the two-component sensor gene graS that leads to intermediate vancomycin
Benjamin P Howden1, Timothy P Stinear, David L Allen
1Department of Microbiology, Monash University, Wellington Rd., Clayton, Victoria, Australia. Benjamin.Howden@austin.org.au
Abstract:
Methicillin-resistant Staphylococcus aureus (MRSA), once restricted to hospitals, is spreading rapidly through the wider community. Resistance to vancomycin, the principal drug used to treat MRSA infections, has only recently emerged, is mainly low level, and characteristically appears during vancomycin therapy (vancomycin-intermediate S. aureus [VISA] and hetero-resistant VISA). This phenomenon suggests the adaptation of MRSA through mutation, although defining the mutations leading to resistance in clinical isolates has been difficult. We studied a vancomycin-susceptible clinical MRSA isolate (MIC of 1 microg/ml) and compared it with an isogenic blood culture isolate from the same patient, despite 42 days of vancomycin treatment (MIC of 4 microg/ml). A whole-genome sequencing approach allowed the nearly complete assembly of the genome sequences of the two isolates and revealed only six nucleotide substitutions in the VISA strain compared with the parent strain. One mutation occurred in graS, encoding a putative two-component regulatory sensor, leading to a change from a polar to a nonpolar amino acid (T136I) in the conserved histidine region of the predicted protein. Replacing the graS allele of the vancomycin-susceptible parent strain with the graS allele from the VISA derivative resulted in increased vancomycin resistance at a level between those of the vancomycin-susceptible S. aureus and VISA clinical isolates, confirming a role for graRS in VISA. Our study suggests that MRSA is able to develop clinically significant vancomycin resistance via a single point mutation, and the two-component regulatory system graRS is a key mediator of this resistance. However, additional mutations are likely required to express the full VISA phenotype.
Insights
Methicillin-resistant Staphylococcus aureus (MRSA) can develop vancomycin resistance through single mutations. The graRS two-component system plays a key role in this adaptation, leading to vancomycin-intermediate S. aureus (VISA) strains.
Area of Science:
- Microbiology
- Genetics
- Infectious Diseases
Background:
- Methicillin-resistant Staphylococcus aureus (MRSA) is a growing public health concern.
- Emergence of vancomycin resistance in MRSA (VRSA) is a critical challenge for treating infections.
- Understanding the genetic basis of vancomycin resistance is crucial for developing new therapeutic strategies.
Purpose of the Study:
- To identify genetic mutations responsible for vancomycin resistance in MRSA.
- To investigate the role of specific genes and regulatory systems in the development of vancomycin-intermediate S. aureus (VISA).
Main Methods:
- Whole-genome sequencing of vancomycin-susceptible and vancomycin-intermediate MRSA isolates.
- Genetic manipulation by replacing the graS allele in the susceptible strain.
- Phenotypic analysis of vancomycin susceptibility in modified strains.
Main Results:
- Six nucleotide substitutions were identified between the susceptible and intermediate MRSA strains.
- A single mutation in the graS gene (T136I) was found to contribute to increased vancomycin resistance.
- Genetic replacement of the graS allele confirmed its role in mediating vancomycin resistance.
Conclusions:
- A single point mutation in the graS gene can confer significant vancomycin resistance in MRSA.
- The graRS two-component regulatory system is a key mediator in the development of VISA.
- Additional genetic factors likely contribute to the full VISA phenotype.
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