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Low Concentrations of Nitric Oxide Modulate Streptococcus pneumoniae Biofilm Metabolism and Antibiotic Tolerance
Raymond N Allan1, Samantha Morgan2, Sanjita Brito-Mutunayagam2
1Clinical and Experimental Sciences, Faculty of Medicine and Institute for Life Sciences, University of Southampton, Southampton, United Kingdom Southampton NIHR Wellcome Trust Clinical Research Facility, University Hospital Southampton NHS Foundation Trust, Southampton, United Kingdom.
Abstract:
Streptococcus pneumoniaeis one of the key pathogens responsible for otitis media (OM), the most common infection in children and the largest cause of childhood antibiotic prescription. Novel therapeutic strategies that reduce the overall antibiotic consumption due to OM are required because, although widespread pneumococcal conjugate immunization has controlled invasive pneumococcal disease, overall OM incidence has not decreased. Biofilm formation represents an important phenotype contributing to the antibiotic tolerance and persistence ofS. pneumoniaein chronic or recurrent OM. We investigated the treatment of pneumococcal biofilms with nitric oxide (NO), an endogenous signaling molecule and therapeutic agent that has been demonstrated to trigger biofilm dispersal in other bacterial species. We hypothesized that addition of low concentrations of NO to pneumococcal biofilms would improve antibiotic efficacy and that higher concentrations exert direct antibacterial effects. Unlike in many other bacterial species, low concentrations of NO did not result inS. pneumoniaebiofilm dispersal. Instead, treatment of bothin vitrobiofilms andex vivoadenoid tissue samples (a reservoir forS. pneumoniaebiofilms) with low concentrations of NO enhanced pneumococcal killing when combined with amoxicillin-clavulanic acid, an antibiotic commonly used to treat chronic OM. Quantitative proteomic analysis using iTRAQ (isobaric tag for relative and absolute quantitation) identified 13 proteins that were differentially expressed following low-concentration NO treatment, 85% of which function in metabolism or translation. Treatment with low-concentration NO, therefore, appears to modulate pneumococcal metabolism and may represent a novel therapeutic approach to reduce antibiotic tolerance in pneumococcal biofilms.
Insights
Nitric oxide (NO) enhances antibiotic effectiveness against Streptococcus pneumoniae biofilms, a common cause of childhood ear infections. This approach may reduce antibiotic tolerance in persistent bacterial infections.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Drug Discovery
Background:
- Streptococcus pneumoniae causes otitis media (OM), leading to high antibiotic use in children.
- Pneumococcal conjugate vaccines have reduced invasive disease but not OM incidence.
- Bacterial biofilms contribute to antibiotic tolerance in chronic or recurrent OM.
Purpose of the Study:
- To investigate nitric oxide's (NO) effect on Streptococcus pneumoniae biofilms.
- To determine if NO improves antibiotic efficacy against pneumococcal biofilms.
- To explore NO's potential as a therapeutic agent for OM.
Main Methods:
- Treatment of in vitro pneumococcal biofilms and ex vivo adenoid tissue with low-concentration NO.
- Combination therapy with amoxicillin-clavulanic acid.
- Quantitative proteomic analysis (iTRAQ) to identify differentially expressed proteins.
Main Results:
- Low-concentration NO did not disperse S. pneumoniae biofilms.
- NO enhanced bacterial killing when combined with amoxicillin-clavulanic acid.
- NO treatment altered the expression of proteins involved in bacterial metabolism and translation.
Conclusions:
- Low-concentration NO modulates pneumococcal metabolism, enhancing antibiotic efficacy.
- NO represents a potential therapeutic strategy to overcome antibiotic tolerance in S. pneumoniae biofilms.
- This approach could reduce antibiotic consumption for otitis media treatment.
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