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Experimental Endocarditis Model of Methicillin Resistant Staphylococcus aureus MRSA in Rat
Published on: June 4, 2012
Impact of the Novel Prophage ϕSA169 on Persistent Methicillin-Resistant Staphylococcus aureus Endovascular Infection
Liang Li1, Genzhu Wang1, Yi Li1
1The Lundquist Institute for Biomedical Innovation at Harbor-UCLA Medical Center, Torrance, California, USA.
Abstract:
Persistent methicillin-resistant Staphylococcus aureus (MRSA) endovascular infections are life-threatening syndromes with few therapeutic options. The potential impact of bacteriophages on the persistent outcome has not been well studied. In this study, we investigated the role of a novel prophage (ϕSA169) in MRSA persistence by using a lysogen-free clinically resolving bacteremia (RB) isolate and comparing it to a derivative which was obtained by infecting the RB strain with ϕSA169, which has been lysogenized in a clinical persistent MRSA bacteremia (PB) isolate. Similar to the PB isolate, the ϕSA169-lysogenized RB strain exhibited well-defined in vitro and in vivo phenotypic and genotypic signatures related to the persistent outcome, including earlier activation of global regulators (i.e., sigB, sarA, agr RNAIII, and sae); higher expression of a critical purine biosynthesis gene, purF; and higher growth rates accompanied by lower ATP levels and vancomycin (VAN) susceptibility and stronger δ-hemolysin and biofilm formation versus its isogenic parental RB isolate. Notably, the contribution of ϕSA169 in persistent outcome with VAN treatment was confirmed in an experimental infective endocarditis model. Taken together, these results indicate the critical role of the prophage ϕSA169 in persistent MRSA endovascular infections. Further studies are needed to identify the mechanisms of ϕSA169 in mediating the persistence, as well as establishing the scope of impact, of this prophage in other PB strains.IMPORTANCE Bacteriophages are viruses that invade the bacterial host, disrupt bacterial metabolism, and cause the bacterium to lyse. Because of its remarkable antibacterial activity and unique advantages over antibiotics, for instance, bacteriophage is specific for one species of bacteria and resistance to phage is less common than resistance to antibiotics. Indeed, bacteriophage therapy for treating infections due to multidrug-resistant pathogens in humans has become a research hot spot. However, it is also worth considering that bacteriophages are transferable and could cotransfer host chromosomal genes, e.g., virulence and antimicrobial resistance genes, while lysogenizing and integrating into the bacterial chromosome (prophage), thus playing a role in bacterial evolution and virulence. In the current study, we identified a novel prophage, ϕSA169, from a clinical persistent MRSA bacteremia isolate, and we determined that ϕSA169 mediated well-defined in vitro and in vivo phenotypic and genotypic signatures related to the persistent outcome, which may represent a unique and important persistent mechanism(s).
Insights
A novel bacteriophage, ϕSA169, significantly contributes to persistent methicillin-resistant Staphylococcus aureus (MRSA) infections. This prophage influences bacterial behavior, impacting treatment outcomes for these difficult-to-treat endovascular infections.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacteriophage Therapy
Background:
- Persistent endovascular infections caused by methicillin-resistant Staphylococcus aureus (MRSA) present significant therapeutic challenges.
- The role of bacteriophages, specifically prophages, in mediating bacterial persistence is not well understood.
Purpose of the Study:
- To investigate the role of a novel prophage, ϕSA169, in the persistence of MRSA endovascular infections.
- To characterize the phenotypic and genotypic changes associated with ϕSA169 lysogenization in MRSA.
Main Methods:
- Comparative analysis of a resolving bacteremia (RB) MRSA isolate and its derivative lysogenized with ϕSA169.
- In vitro and in vivo studies, including an experimental infective endocarditis model.
- Assessment of global regulators, purine biosynthesis gene expression, growth rates, ATP levels, vancomycin susceptibility, hemolysin, and biofilm formation.
Main Results:
- ϕSA169 lysogenization induced phenotypic and genotypic signatures of persistence, similar to clinical persistent MRSA bacteremia (PB) isolates.
- Lysogenized strains showed earlier activation of key regulators (sigB, sarA, agr RNAIII, sae) and increased purF expression.
- Enhanced growth rates, reduced ATP levels, decreased vancomycin susceptibility, and increased δ-hemolysin and biofilm formation were observed.
Conclusions:
- The prophage ϕSA169 plays a critical role in mediating persistent MRSA endovascular infections.
- ϕSA169 influences bacterial virulence factors and antibiotic susceptibility, contributing to treatment challenges.
- Further research is needed to elucidate the precise mechanisms of ϕSA169 and its impact on other persistent MRSA strains.
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