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Published on: September 8, 2021
Lactoferrin Displays Stimulating and Protective Effects on Newly Isolated Phage vB_Sau-E: A New Perspective for
Urszula Leszczyńska1, Małgorzata Stasiłojć2, Milena Grzenkowicz3,4
1Student Scientific Circle of Medical Microbiology, Department of Medical Microbiology, Faculty of Medicine, Medical University of Gdańsk, 80-204 Gdańsk, Poland.
Abstract:
Background/Objectives: Skin and soft tissue infections (SSTIs) represent a significant clinical challenge, largely due to the high prevalence of antibiotic-resistant Staphylococcus aureus, particularly methicillin-resistant S. aureus (MRSA). Treatment is further complicated by biofilm formation, which reduces antibiotic efficacy. The limitations of conventional therapies highlight the need for alternative approaches. Phage therapy has emerged as a promising biological strategy; however, its effectiveness may be constrained by factors such as phage instability and biofilm regrowth. This study aimed to enhance phage-based treatment by combining a newly isolated phage, vB_Sau-E, with lactoferrin (Lf), a multifunctional protein of the innate immune system. Methods: Phage vB_Sau-E was characterized in terms of its infection dynamics and lytic activity. Biocompatibility was further examined using human skin cell lines. The potential effect of Lf was assessed by evaluating its impact on phage infectivity and stability under a range of environmental conditions and by checkerboard assay. Results: Phage vB_Sau-E belongs to the Silviavirus genus in the Herelleviridae family. It was shown to infect 12 out of 22 tested clinical MRSA isolates, with 10 strains identified as good hosts. The phage has a ~30 min life cycle, and ~50 progeny virions are released after bacterial cell lysis. We have also observed that Lf increased plating efficiency and enhanced phage stability at a pH of 5.5 and at -20° C. It also proved to have an additive antibacterial effect, though this was observed to be strain-dependent. Conclusions: Lactoferrin functions as a stabilizing adjuvant for phage vB_Sau-E. Its additive effect supports the development of more effective, biofilm-targeting therapies for staphylococcal SSTIs.
Insights
Lactoferrin enhances the stability and effectiveness of phage vB_Sau-E, a promising treatment for antibiotic-resistant skin infections. This combination therapy offers a novel approach to combatting difficult-to-treat Staphylococcus aureus infections.
Area of Science:
- Microbiology
- Biotechnology
- Infectious Diseases
Background:
- Skin and soft tissue infections (SSTIs) pose a significant challenge due to antibiotic-resistant strains like methicillin-resistant Staphylococcus aureus (MRSA).
- Biofilm formation by Staphylococcus aureus reduces conventional antibiotic efficacy, necessitating alternative therapeutic strategies.
- Phage therapy shows promise but faces limitations like phage instability and biofilm regrowth.
Purpose of the Study:
- To characterize a newly isolated phage, vB_Sau-E, for its lytic activity against MRSA.
- To evaluate the potential of lactoferrin (Lf) as an adjuvant to enhance phage therapy efficacy and stability.
- To assess the combined therapeutic potential of phage vB_Sau-E and Lf against staphylococcal SSTIs.
Main Methods:
- Characterization of phage vB_Sau-E infection dynamics and lytic activity.
- Assessment of phage vB_Sau-E biocompatibility with human skin cell lines.
- Evaluation of lactoferrin's impact on phage infectivity, stability, and antibacterial activity using checkerboard assays.
Main Results:
- Phage vB_Sau-E, a Silviavirus, infects 10 out of 22 clinical MRSA isolates with a ~30-minute life cycle.
- Lactoferrin increased phage plating efficiency and stability at pH 5.5 and -20°C.
- Lactoferrin demonstrated an additive, strain-dependent antibacterial effect.
Conclusions:
- Lactoferrin acts as a stabilizing adjuvant for phage vB_Sau-E, enhancing its therapeutic potential.
- The combination of phage vB_Sau-E and lactoferrin supports the development of advanced therapies for staphylococcal SSTIs.
- This synergistic approach shows promise for targeting biofilms and overcoming antibiotic resistance in MRSA infections.
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