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Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Modification of the immune response by bacteriophages alters methicillin-resistant Staphylococcus aureus infection
Tomoya Suda1, Tomoko Hanawa2, Mayuko Tanaka3
1Department of General Medicine, Kyorin University School of Medicine, 6-20-2, Shinkawa, Mitaka, Tokyo, 181-8611, Japan.
Abstract:
There is an urgent need to develop phage therapies for multidrug-resistant bacterial infections. However, although bacteria have been shown to be susceptible to phage therapy, phage therapy is not sufficient in some cases. PhiMR003 is a methicillin-resistant Staphylococcus aureus phage previously isolated from sewage influent, and it has demonstrated high lytic activity and a broad host range to MRSA clinical isolates in vitro. To investigate the potential of phiMR003 for the treatment of MRSA infection, the effects of phiMR003 on immune responses in vivo were analysed using phiMR003-susceptible MRSA strains in a mouse wound infection model. Additionally, we assessed whether phiMR003 could affect the immune response to infection with a nonsusceptible MRSA strain. Interestingly, wounds infected with both susceptible and nonsusceptible MRSA strains treated with phiMR003 demonstrated decreased bacterial load, reduced inflammation and accelerated wound closure. Moreover, the infiltration of inflammatory cells in infected tissue was altered by phiMR003. While the effects of phiMR003 on inflammation and bacterial load disappeared with heat inactivation of phiMR003. Transcripts of proinflammatory cytokines induced by lipopolysaccharide were reduced in mouse peritoneal macrophages. These results show that the immune modulation occurring as a response to the phage itself improves the clinical outcomes of phage therapy.
Insights
Phage therapy using phiMR003 effectively treats methicillin-resistant Staphylococcus aureus (MRSA) infections by reducing bacterial load and inflammation. This phage therapy enhances immune responses, improving clinical outcomes in wound infections.
Area of Science:
- Bacteriology
- Immunology
- Phage Therapy
Background:
- Multidrug-resistant bacterial infections necessitate novel therapeutic strategies.
- Phage therapy shows promise but can be insufficient in some cases.
- PhiMR003 is a potent phage targeting methicillin-resistant Staphylococcus aureus (MRSA).
Purpose of the Study:
- To investigate the efficacy of phiMR003 in a mouse wound infection model.
- To analyze the impact of phiMR003 on host immune responses during MRSA infection.
- To determine if phiMR003 affects immune responses to non-susceptible MRSA strains.
Main Methods:
- Utilized a mouse wound infection model with MRSA strains.
- Administered phiMR003 phage therapy.
- Assessed bacterial load, inflammation, wound closure, inflammatory cell infiltration, and cytokine expression.
- Compared effects of active and heat-inactivated phiMR003.
Main Results:
- PhiMR003 treatment decreased bacterial load, reduced inflammation, and accelerated wound closure in MRSA-infected wounds.
- Phage therapy modulated inflammatory cell infiltration in infected tissues.
- Heat inactivation abolished the therapeutic effects of phiMR003.
- PhiMR003 reduced pro-inflammatory cytokine transcripts in macrophages.
Conclusions:
- PhiMR003 demonstrates therapeutic potential for MRSA infections.
- The phage itself possesses immune-modulatory properties that enhance treatment outcomes.
- Phage therapy's effectiveness is linked to its ability to modulate the host immune response.
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