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Moraxella catarrhalis is susceptible to antimicrobial photodynamic therapy with Photofrin
Nicole R Luke-Marshall1, Thomas S Mang, Lisa A Hansen
1Department of Microbiology and Immunology, State University of New York at Buffalo, Buffalo, New York.
Background And Objective:
Moraxella catarrhalis is a significant cause of pediatric otitis media (OM), which is the most prevalent bacterial infection in children and primary reason for antibiotic administration in this population. Moreover, biofilm formation has been implicated as a primary mechanism of chronic or recurrent OM disease. As bacterial biofilms are inherently resistant to most antibiotics and these complex structures also present a significant challenge to the immune system, there is a clear need to identify novel antimicrobial approaches to treat OM infections. In this study, we evaluated the potential efficacy of antibacterial photodynamic therapy (aPDT) with porfimer sodium (Photofrin (PF)) against planktonic as well as biofilm-associated M. catarrhalis.
Materials And Methods:
The bactericidal activity of aPDT with PF was assessed against multiple recent clinical isolates of M. catarrhalis grown planktonically as well as in biofilms. The bactericidal activity of PF-aPDT was quantified by enumeration of colony forming units post-treatment. The effect of aPDT on M. catarrhalis biofilms was further investigated with scanning electron microscopy (SEM) imaging.
Results:
aPDT with PF significantly reduced M. catarrhalis viability. Although PF-aPDT caused higher killing in planktonic grown organisms (5-6 log kill), biofilm grown bacteria also demonstrated a statistically significant reduction in viable organisms (3-4 log decrease in recoverable bacteria) following treatment as compared to saline only controls (P < 0.01). SEM studies indicated the PF-aPDT treated bacteria exhibited prominent morphological changes with visibly distorted cell membranes.
Conclusions:
aPDT with PF elicits significant bactericidal activity against both planktonic and biofilm-associated M. catarrhalis, suggesting this technology warrants further analysis as a potential novel antimicrobial treatment for acute or recurrent OM.
Insights
Antibacterial photodynamic therapy (aPDT) with porfimer sodium effectively reduced Moraxella catarrhalis viability in both planktonic and biofilm forms. This shows promise for treating pediatric otitis media (OM).
Area of Science:
- Microbiology
- Photomedicine
- Otolaryngology
Background:
- Moraxella catarrhalis is a key pathogen in pediatric otitis media (OM), a common childhood infection often treated with antibiotics.
- Bacterial biofilms contribute to chronic or recurrent OM and exhibit resistance to conventional antibiotics and host defenses.
- Novel antimicrobial strategies are needed to combat antibiotic-resistant bacteria in OM.
Purpose of the Study:
- To evaluate the efficacy of antibacterial photodynamic therapy (aPDT) using porfimer sodium (Photofrin) against planktonic and biofilm-associated Moraxella catarrhalis.
- To assess the potential of aPDT as a novel treatment for OM caused by M. catarrhalis.
Main Methods:
- Assessed bactericidal activity of PF-aPDT against clinical isolates of M. catarrhalis grown planktonically and in biofilms.
- Quantified bacterial killing by enumerating colony-forming units post-treatment.
- Utilized scanning electron microscopy (SEM) to visualize the effects of PF-aPDT on M. catarrhalis biofilms and cell morphology.
Main Results:
- PF-aPDT significantly reduced M. catarrhalis viability in both planktonic (5-6 log kill) and biofilm (3-4 log decrease) states.
- SEM imaging revealed significant morphological changes, including distorted cell membranes, in PF-aPDT treated M. catarrhalis.
- Treatment showed statistically significant reduction in viable bacteria compared to controls (P < 0.01).
Conclusions:
- Antibacterial photodynamic therapy with porfimer sodium demonstrates significant bactericidal activity against both planktonic and biofilm M. catarrhalis.
- This suggests aPDT warrants further investigation as a potential novel therapeutic approach for acute and recurrent otitis media.
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