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Subcutaneous Infection of Methicillin Resistant Staphylococcus Aureus MRSA
Published on: February 9, 2011
Dissemination of Methicillin-Resistant Staphylococcus aureus Sequence Type 764 Isolates with Mupirocin Resistance in
Yinjuan Guo1, Linling Xu2, Bingjie Wang1
1Department of Clinical Laboratory, Shanghai Pulmonary Hospital, Tongji University, School of Medicine, Shanghai, China.
Abstract:
Mupirocin, a topical antimicrobial agent, is an important component in the eradication of methicillin-resistant Staphylococcus aureus (MRSA) colonization. The molecular characteristics of 46 mupirocin-resistant MRSA (MR-MRSA) clinical isolates were analyzed by multilocus sequence typing (MLST), staphylococcal cassette chromosome mec element (SCCmec) typing, spa typing, and analysis of virulence genes. All 26 MRSA isolates with low-level mupirocin resistance possessed a V588F mutation in ileS. Among 20 MRSA isolates with high-level resistance to mupirocin, all carried mupA; 2 isolates also possessed the V588F mutation in ileS, and 1 possessed the V631F mutation in ileS (isoleucyl-tRNA synthetase). The majority of MR-MRSA isolates were resistant to erythromycin, clindamycin, tetracycline, ciprofloxacin, and gentamicin, but the rates of resistance to rifampin and fusidic acid were 8.7% and 6.5%, respectively. Eight sequence types (STs) were found among the 46 MR-MRSA isolates, of which ST764 was the most prevalent (76.1%). The most frequent spa type identified was t1084 (52.2%). The SCCmec type most frequently found was type II (80.4%). The most common clone among low-level MR-MRSA isolates was ST764-MRSA-SCCmec type II-t1084 (23 isolates), while ST764-MRSA-SCCmec type II-t002 (9 isolates) was the most common clone among high-level MR-MRSA isolates. Additionally, all toxin genes except the seb gene were not identified among ST764 isolates. Among clonal complex 5 (CC5) isolates, immune evasion cluster (IEC)-associated genes (chp, sak, and scn) and seb were present in ST764 but absent in ST5, while sec, sel1, tsst-1, and hlb genes were identified in ST5 but absent in ST764. In conclusion, the spread of CC5 clones, especially a novel ST764-MRSA-SCCmec type II-t1084 clone with high-level resistance to mupirocin, was responsible for the increase in mupirocin resistance. These findings indicated that the emergence of the ST764 MR-MRSA clone involves a therapeutic challenge for treating serious MRSA infections. IMPORTANCE Mupirocin, a topical antibiotic that is commonly used for the nasal decolonization of MRSA and methicillin-sensitive Staphylococcus aureus in hospital settings and nursing homes, was introduced as a highly effective antibiotic against MRSA. Mupirocin acts by competitively binding isoleucyl-tRNA synthetase, thereby disrupting protein synthesis. This drug shows bacteriostatic and bactericidal activity at low and high concentrations, respectively. However, with the increase in mupirocin use, low-level and high-level resistance during nasal mupirocin treatment has been reported. In a previous study, the proportion of MRSA strains with high-level mupirocin resistance in a Canadian hospital increased from 1.6% in the first 5 years of surveillance (1995 to 1999) to 7.0% (2000 to 2004).
Insights
A novel clone of methicillin-resistant Staphylococcus aureus (MRSA) with high-level mupirocin resistance, ST764-MRSA-SCCmec type II-t1084, is driving increased mupirocin resistance. This emergence poses a therapeutic challenge for treating MRSA infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Antimicrobial Resistance
Background:
- Mupirocin is a critical topical antimicrobial for eradicating methicillin-resistant Staphylococcus aureus (MRSA) colonization.
- Increasing use of mupirocin has led to reported cases of low-level and high-level mupirocin resistance during treatment.
- Previous surveillance showed a rise in high-level mupirocin resistance in MRSA strains within a Canadian hospital.
Purpose of the Study:
- To analyze the molecular characteristics of mupirocin-resistant MRSA (MR-MRSA) clinical isolates.
- To identify the genetic basis and clonal spread of mupirocin resistance in MRSA.
- To understand the implications of emerging mupirocin resistance for MRSA infection treatment.
Main Methods:
- Multilocus sequence typing (MLST) was used to determine sequence types (STs).
- Staphylococcal cassette chromosome *mec* element (SCC*mec*) typing and *spa* typing were performed.
- Analysis of virulence genes and mutations in the *ileS* gene (encoding isoleucyl-tRNA synthetase) was conducted.
Main Results:
- Low-level mupirocin resistance was associated with the V588F mutation in *ileS*.
- High-level mupirocin resistance was linked to the *mupA* gene; some isolates also had *ileS* mutations.
- The ST764 clone, particularly ST764-MRSA-SCC*mec* type II-t1084, was the most prevalent, accounting for a significant increase in mupirocin resistance.
Conclusions:
- The spread of CC5 clones, especially the novel ST764-MRSA-SCC*mec* type II-t1084, is responsible for the rise in mupirocin resistance.
- The emergence of this ST764 MR-MRSA clone presents a therapeutic challenge for treating serious MRSA infections.
- Understanding the molecular epidemiology of mupirocin resistance is crucial for effective MRSA control strategies.

