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Updated: Apr 7, 2026

Biosensor for Detection of Antibiotic Resistant Staphylococcus Bacteria
Published on: May 8, 2013
Isolation and Host Range of Bacteriophage with Lytic Activity against Methicillin-Resistant Staphylococcus aureus and
Kyle C Jensen1, Bryan B Hair1, Trevor M Wienclaw1
1Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, 84602, United States of America.
Abstract:
Staphylococcus aureus (SA) is a commensal bacterium and opportunistic pathogen commonly associated with humans and is capable of causing serious disease and death including sepsis, pneumonia, and meningitis. Methicillin-resistant SA (MRSA) isolates are typically resistant to many available antibiotics with the common exception of vancomycin. The presence of vancomycin resistance in some SA isolates combined with the current heavy use of vancomycin to treat MRSA infections indicates that MRSA may achieve broad resistance to vancomycin in the near future. New MRSA treatments are clearly needed. Bacteriophages (phages) are viruses that infect bacteria, commonly resulting in death of the host bacterial cell. Phage therapy entails the use of phage to treat or prevent bacterial infections. In this study, 12 phages were isolated that can replicate in human SA and/or MRSA isolates as a potential way to control these infections. 5 phage were discovered through mitomycin C induction of prophage and 7 others as extracellular viruses. Primary SA strains were also isolated from environmental sources to be used as tools for phage discovery and isolation as well as to examine the target cell host range of the phage isolates by spot testing. Primary isolates were tested for susceptibility to oxacillin in order to determine which were MRSA. Experiments were performed to assess the host range and killing potential of newly discovered phage, and significant reductions in bacterial load were detected. We explored the utility of some phage to decontaminate fomites (glass and cloth) and found a significant reduction in colony forming units of MRSA following phage treatment, including tests of a phage cocktail against a cocktail of MRSA isolates. Our findings suggest that phage treatment can be used as an effective tool to decontaminate human MRSA from both hard surfaces and fabrics.
Insights
Researchers isolated 12 bacteriophages (phages) effective against Staphylococcus aureus (SA) and methicillin-resistant SA (MRSA). Phage therapy shows promise for controlling MRSA infections and decontaminating surfaces.
Area of Science:
- Microbiology
- Virology
- Infectious Diseases
Background:
- Staphylococcus aureus (SA) is a common bacterium causing severe infections.
- Methicillin-resistant SA (MRSA) poses a significant threat due to antibiotic resistance, particularly to vancomycin.
- Emerging vancomycin resistance necessitates novel treatment strategies.
Purpose of the Study:
- To isolate and characterize bacteriophages (phages) capable of targeting SA and MRSA.
- To evaluate the efficacy of isolated phages in reducing bacterial load and decontaminating surfaces.
Main Methods:
- Isolation of 12 phages from environmental sources and via prophage induction.
- Characterization of phage host range and lytic activity against SA and MRSA.
- Assessment of phage efficacy in reducing bacterial counts on fomites (glass, cloth).
Main Results:
- 12 phages were successfully isolated and demonstrated replication with SA and MRSA.
- Phage treatment significantly reduced bacterial load in vitro.
- Phage application effectively decontaminated glass and cloth surfaces from MRSA.
Conclusions:
- Bacteriophage therapy is a viable strategy for controlling SA and MRSA infections.
- Phages can effectively decontaminate environmental surfaces from MRSA.
- Further development of phage therapy is warranted for combating antibiotic-resistant bacteria.
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