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Updated: May 25, 2025

Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Prophage ϕSA169 Enhances Vancomycin Persistence in Methicillin-Resistant Staphylococcus aureus (MRSA)
Yi Li1, Andrew D Berti2, Wessam Abdelhady1
1The Lundquist Institute for Biomedical Innovation at Harbor-UCLA Medical Center, Torrance, CA 90502, USA.
Abstract:
Background: Persistent methicillin-resistant Staphylococcus aureus (MRSA) endovascular infections present a significant clinical therapeutic challenge. Prophages are increasingly recognized as important genetic factors influencing the pathogenicity of S. aureus, yet their role in antibiotic persistence in MRSA remains underexplored. Our previous work demonstrated that prophage ϕSA169 promotes vancomycin (VAN) persistence in an experimental model of endocarditis caused by MRSA strains with a clonal complex (CC) 45 genetic background. However, it is unknown whether this persistence-promoting effect of ϕSA169 extends to other clinically relevant MRSA lineages. This study aims to elucidate the role of ϕSA169 in influencing VAN persistence across diverse MRSA genetic backgrounds. Methods: A pilot analysis of clinical data suggested that patients infected by MRSA containing ϕSA169-like prophage appear to have worse clinical outcomes. Thus, we lysogenized representative clinical resolving bacteremia (RB) MRSA strains with ϕSA169 and evaluated phenotypes closely associated with VAN persistence, including VAN susceptibility, biofilm formation, and the efficacy of VAN treatment in an experimental infective endocarditis (IE) model. Each ϕSA169 lysogenic strain was compared to its isogenic MRSA parental counterpart. Results: ϕSA169 lysogeny significantly promotes biofilm formation and enhances survival to VAN exposure under human-mimicking conditions for RB strains from CC5 and CC30. ϕSA169 lysogeny significantly reduces VAN effectiveness in the IE model due to RB lysogen from CC5 despite no detectable impact on VAN MICs. Conclusions: These results indicate that ϕSA169 promotes VAN persistence across clonal backgrounds, likely through biofilm formation and VAN tolerance. Targeting prophage could provide new strategies to combat persistent MRSA infections.
Insights
Prophage ϕSA169 enhances vancomycin (VAN) persistence in methicillin-resistant Staphylococcus aureus (MRSA) by promoting biofilm formation and VAN tolerance across diverse genetic backgrounds, suggesting new therapeutic targets.
Area of Science:
- Microbiology
- Infectious Diseases
- Genetics
Background:
- Persistent methicillin-resistant Staphylococcus aureus (MRSA) endovascular infections pose a major clinical challenge.
- Prophages are key genetic factors in S. aureus pathogenicity, but their role in MRSA antibiotic persistence is understudied.
- Previous research linked prophage ϕSA169 to vancomycin (VAN) persistence in CC45 MRSA.
Purpose of the Study:
- To investigate the role of prophage ϕSA169 in vancomycin (VAN) persistence across diverse MRSA genetic backgrounds.
- To determine if ϕSA169 influences VAN susceptibility, biofilm formation, and treatment efficacy in MRSA.
- To assess the clinical relevance of ϕSA169 in MRSA infections.
Main Methods:
- Lysogenization of resolving bacteremia (RB) MRSA strains from CC5 and CC30 with ϕSA169.
- Evaluation of VAN susceptibility, biofilm formation, and VAN treatment efficacy in an experimental infective endocarditis (IE) model.
- Comparison of ϕSA169 lysogenic strains with their isogenic MRSA parental counterparts.
Main Results:
- ϕSA169 lysogeny significantly enhanced biofilm formation and survival to VAN exposure in CC5 and CC30 MRSA strains.
- ϕSA169 reduced VAN effectiveness in the IE model for CC5 MRSA, despite no change in VAN minimum inhibitory concentrations (MICs).
- Pilot clinical data suggested worse outcomes in patients with MRSA containing ϕSA169-like prophages.
Conclusions:
- Prophage ϕSA169 promotes VAN persistence across different MRSA clonal backgrounds.
- Biofilm formation and VAN tolerance are likely mechanisms by which ϕSA169 confers persistence.
- Targeting prophages may offer novel strategies for combating persistent MRSA infections.
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