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Published on: April 16, 2018
Antimicrobial photodynamic therapy against Propionibacterium acnes biofilms using hypericin (Hypericum perforatum)
Rosmeire Aparecida Barroso1, Ricardo Navarro1, Carla Roberta Tim1
1Scientific and Technological Institute, Biomedical Engineering Graduate Program, Universidade Brasil, São Paulo, SP, Brazil.
Abstract:
Acne vulgaris is the most recurring skin condition in the world, causing great harm to the physical and psychological well-being of many patients. Antimicrobial photodynamic therapy (aPDT) has broad therapeutic applicability. The purpose was to evaluate in vitro the photodynamic inactivation against Propionibacterium acnes (P. acnes) biofilms by using different concentrations of hypericin (Hypericum perforatum) photosensitizer associated with different energies of low-level laser. The biofilms were placed in 96-well microplates with a 6.4-mm diameter surface, by using standard suspensions (2 × 107 CFU/mL) and grown in brain heart infusion broth (BHI) for 48 h in anaerobic chamber. Subsequently, the control group received application of 0.9% sterile saline solution for 3 min; the photosensitising groups received hypericin at concentrations of 5 and 15 μg/mL for 3 min; the laser groups received irradiation of energies of 3 and 5 J (660 nm, continuous output, 100 mW, 30 and 50 s and 100 J/cm2 and 166 J/cm2, respectively); the aPDT groups received 5 and 15 μg/mL concentrations of hypericin associated with energies of 3 and 5 J of low-level laser irradiation. After the biofilms were broken up and seeded for CFU counting. The results showed a reduction in P. acnes biofilms after aPDT emphasising that 15 μg/mL hypericin associated with 3 and 5 J laser irradiation reduced biofilms by 14.1 and 27.9%, respectively. In addition, all groups of aPDT demostrated statistically significant reductions. In vitro photodynamic inactivation against P. acnes biofilms using different concentration of hypericin photosensitizer associated with different energies of low-level laser promoted effective antimicrobial action.
Insights
Antimicrobial photodynamic therapy using hypericin and low-level laser effectively reduced Propionibacterium acnes biofilms. This study shows promising results for treating acne vulgaris with this innovative approach.
Area of Science:
- Dermatology
- Microbiology
- Photomedicine
Background:
- Acne vulgaris is a prevalent skin condition impacting physical and psychological health.
- Antimicrobial photodynamic therapy (aPDT) offers a versatile therapeutic strategy.
Purpose of the Study:
- To evaluate the in vitro effectiveness of aPDT against Propionibacterium acnes (P. acnes) biofilms.
- To assess the impact of varying hypericin concentrations and low-level laser energies on P. acnes biofilms.
Main Methods:
- P. acnes biofilms were cultivated in microplates for 48 hours.
- Biofilms were treated with different concentrations of hypericin (5 and 15 μg/mL) and low-level laser energies (3 and 5 J).
- Post-treatment, biofilms were disrupted, and colony-forming units (CFU) were counted to determine bacterial reduction.
Main Results:
- aPDT significantly reduced P. acnes biofilms.
- Hypericin at 15 μg/mL combined with 3 J and 5 J laser energy decreased biofilms by 14.1% and 27.9%, respectively.
- All tested aPDT groups demonstrated statistically significant reductions in bacterial load.
Conclusions:
- In vitro photodynamic inactivation using hypericin and low-level laser shows effective antimicrobial action against P. acnes biofilms.
- This approach presents a viable strategy for managing acne vulgaris by targeting P. acnes.
- Further research may explore clinical applications of this aPDT method.
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