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Updated: Jan 3, 2026

Precise Phage Mutagenesis with NgTET-Assisted CRISPR-Cas Systems
Published on: October 14, 2025
CRISPR-Cas9 modified bacteriophage for treatment of Staphylococcus aureus induced osteomyelitis and soft tissue
Leah H Cobb1, JooYoun Park2, Elizabeth A Swanson3
1Department of Agricultural and Biological Engineering, Mississippi State University, Mississippi State, Mississippi, United States of America.
Abstract:
Osteomyelitis, or bone infection, is often induced by antibiotic resistant Staphylococcus aureus strains of bacteria. Although debridement and long-term administration of antibiotics are the gold standard for osteomyelitis treatment, the increase in prevalence of antibiotic resistant bacterial strains limits the ability of clinicians to effectively treat infection. Bacteriophages (phages), viruses that in a lytic state can effectively kill bacteria, have gained recent attention for their high specificity, abundance in nature, and minimal risk of host toxicity. Previously, we have shown that CRISPR-Cas9 genomic editing techniques could be utilized to expand temperate bacteriophage host range and enhance bactericidal activity through modification of the tail fiber protein. In a dermal infection study, these CRISPR-Cas9 phages reduced bacterial load relative to unmodified phage. Thus we hypothesized this temperate bacteriophage, equipped with the CRISPR-Cas9 bactericidal machinery, would be effective at mitigating infection from a biofilm forming S. aureus strain in vitro and in vivo. In vitro, qualitative fluorescent imaging demonstrated superiority of phage to conventional vancomycin and fosfomycin antibiotics against S. aureus biofilm. Quantitative antibiofilm effects increased over time, at least partially, for all fosfomycin, phage, and fosfomycin-phage (dual) therapeutics delivered via alginate hydrogel. We developed an in vivo rat model of osteomyelitis and soft tissue infection that was reproducible and challenging and enabled longitudinal monitoring of infection progression. Using this model, phage (with and without fosfomycin) delivered via alginate hydrogel were successful in reducing soft tissue infection but not bone infection, based on bacteriological, histological, and scanning electron microscopy analyses. Notably, the efficacy of phage at mitigating soft tissue infection was equal to that of high dose fosfomycin. Future research may utilize this model as a platform for evaluation of therapeutic type and dose, and alternate delivery vehicles for osteomyelitis mitigation.
Insights
CRISPR-edited bacteriophages show promise in treating Staphylococcus aureus bone infections. These phages effectively reduced soft tissue infections in a rat model, offering a potential alternative to antibiotics for combating resistant bacteria.
Area of Science:
- Microbiology
- Biotechnology
- Infectious Diseases
Background:
- Osteomyelitis is a bone infection often caused by antibiotic-resistant Staphylococcus aureus.
- Current treatments like debridement and antibiotics are challenged by rising bacterial resistance.
- Bacteriophages (phages) are viruses that target bacteria and are being explored as an alternative therapy.
Purpose of the Study:
- To evaluate the efficacy of CRISPR-Cas9-enhanced bacteriophages against Staphylococcus aureus biofilms in vitro and in vivo.
- To assess the potential of these modified phages as a therapeutic strategy for osteomyelitis.
Main Methods:
- CRISPR-Cas9 technology was used to enhance bacteriophage bactericidal activity.
- In vitro studies assessed antibiofilm effects of phages and conventional antibiotics (vancomycin, fosfomycin) delivered via alginate hydrogel.
- An in vivo rat model of osteomyelitis and soft tissue infection was developed for therapeutic evaluation.
Main Results:
- In vitro, phages demonstrated superior antibiofilm activity against S. aureus compared to vancomycin and fosfomycin.
- Both phage and fosfomycin, delivered via hydrogel, showed quantitative antibiofilm effects over time.
- In vivo, phage therapy (with or without fosfomycin) successfully reduced soft tissue infections but not bone infections.
Conclusions:
- CRISPR-enhanced bacteriophages are effective against S. aureus soft tissue infections, comparable to high-dose fosfomycin.
- While promising for soft tissue infections, phage therapy requires further development for effective treatment of osteomyelitis.
- The developed rat model serves as a valuable platform for future osteomyelitis therapeutic research.
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