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Exploring diflunisal as a synergistic agent against Staphylococcus aureus biofilm formation
Maria Salazar1, Siavash Shahbazi Nia2, Nadezhda A German2
1School of Veterinary Medicine, Texas Tech University, Amarillo, TX, United States.
Abstract:
Staphylococcus aureus is a bacterial pathogen of considerable significance in public health, capable of inducing a diverse range of infectious diseases. One of the most notorious mechanisms used by S. aureus to survive and colonize the site of infection is its ability to form biofilms. Diflunisal, a non-steroidal anti-inflammatory drug (NSAID), is a known inhibitor of the Agr system in S. aureus, which is key in regulating biofilm formation. This study evaluated the effect of broad-spectrum antibiotics in combination with diflunisal on S. aureus biofilm density. Eight antibiotics were tested independently at different concentrations and in combination with diflunisal to assess their effect on S. aureus biofilm formation. When using the antibiotics alone and with diflunisal, a significant control effect on biofilm formation was observed (p < 0.05), irrespective of diflunisal presence, but did not achieve a complete biofilm growth inhibition. Over time, diflunisal influenced biofilm formation; however, such an effect was correlated with antibiotic concentration and exposure time. With amikacin treatments, biofilm density increased with extended exposure time. In the case of imipenem, doripenem, levofloxacin, and ciprofloxacin, lower doses and absence of diflunisal showed higher control over biofilm growth with longer exposure. However, in all cases, diflunisal did not significantly affect the treatment effect on biofilm formation. In the absence of antibiotics, diflunisal significantly reduced biofilm formation by 53.12% (p < 0.05). This study suggests that diflunisal could be a potential treatment to control S. aureus biofilms, but it does not enhance biofilm inhibition when combined with antibiotics.
Insights
Diflunisal effectively reduced Staphylococcus aureus biofilm formation by over 50% independently. However, combining diflunisal with antibiotics did not enhance biofilm inhibition, suggesting its potential as a standalone treatment for S. aureus biofilms.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Staphylococcus aureus is a significant public health pathogen.
- Bacterial biofilms are a key mechanism for S. aureus survival and colonization.
- The Agr system regulates S. aureus biofilm formation, and diflunisal inhibits it.
Purpose of the Study:
- To evaluate the effect of broad-spectrum antibiotics combined with diflunisal on S. aureus biofilm density.
- To assess the impact of diflunisal alone and in combination with antibiotics on S. aureus biofilm formation.
Main Methods:
- Eight antibiotics were tested independently and in combination with diflunisal.
- Antibiotic concentrations and exposure times were varied.
- Biofilm density was measured to assess the inhibitory effects.
Main Results:
- Both antibiotics alone and with diflunisal significantly controlled biofilm formation (p < 0.05) but did not achieve complete inhibition.
- Diflunisal alone significantly reduced S. aureus biofilm formation by 53.12% (p < 0.05).
- Diflunisal did not significantly enhance biofilm inhibition when combined with antibiotics, with effects varying based on antibiotic concentration and exposure time.
Conclusions:
- Diflunisal shows potential as a standalone agent for controlling Staphylococcus aureus biofilms.
- Combination therapy with diflunisal and antibiotics does not appear to improve biofilm inhibition compared to antibiotics alone.
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