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Hypocrellin-Mediated PDT: A Systematic Review of Its Efficacy, Applications, and Outcomes
Jakub Fiegler-Rudol1, Katarzyna Kapłon2, Kornela Kotucha2
1Department of Periodontal Diseases and Oral Mucosa Diseases, Faculty of Medical Sciences in Zabrze, Medical University of Silesia, 40-055 Katowice, Poland.
Abstract:
Photodynamic therapy (PDT) is a light-activated treatment that generates reactive oxygen species (ROS) to induce microbial cell death. As resistance to traditional antibiotics intensifies globally, PDT has emerged as a promising alternative or adjunctive antimicrobial strategy. Among various photosensitizers, Hypocrellin, a perylenequinone compound, has shown high ROS yield and broad-spectrum activity against bacteria and fungi. This systematic review evaluated the efficacy, safety, and therapeutic potential of Hypocrellin-mediated antimicrobial photodynamic therapy. Following PRISMA 2020 guidelines, a comprehensive literature search was conducted in PubMed, Embase, Scopus, and the Cochrane Library for studies published between 2015 and 2025. Eligible studies included in vitro and preclinical in vivo research using Hypocrellin as a photosensitizer. Quality and risk of bias were assessed using a structured nine-item checklist. Ten eligible studies, all conducted in China, were included. Hypocrellin-mediated aPDT significantly reduced microbial loads in both planktonic and biofilm states of resistant pathogens such as Candida albicans, Candida auris, Cutibacterium acnes, and Staphylococcus aureus. The treatment acted via ROS-mediated apoptosis, membrane disruption, and mitochondrial dysfunction, with minimal cytotoxicity to mammalian cells. Studies also reported enhanced efficacy when Hypocrellin was incorporated into nanocarriers, polymeric scaffolds, or combined with chemodynamic or photothermal therapies. However, substantial heterogeneity was observed in Hypocrellin concentrations, irradiation parameters, and outcome measures. Hypocrellin-based PDT exhibits potent antimicrobial activity and favorable safety in preclinical settings, supporting its potential as an alternative to conventional antibiotics. However, standardized treatment protocols and robust clinical trials are urgently needed to validate long-term safety and translational feasibility. These findings underscore the broader promise of PDT in addressing drug-resistant infections through a mechanism unlikely to induce resistance.
Insights
Hypocrellin-based antimicrobial photodynamic therapy (aPDT) shows potent ROS-mediated killing of resistant microbes like Candida albicans and Staphylococcus aureus. Further clinical trials are needed to confirm its safety and efficacy as an antibiotic alternative.
Area of Science:
- Biomedical Engineering
- Photochemistry
- Microbiology
Background:
- Antibiotic resistance necessitates novel antimicrobial strategies.
- Photodynamic therapy (PDT) offers a promising alternative by generating reactive oxygen species (ROS) for microbial cell death.
- Hypocrellin, a perylenequinone, demonstrates high ROS yield and broad-spectrum antimicrobial activity.
Approach:
- A systematic review following PRISMA 2020 guidelines was conducted.
- Literature search across major databases (PubMed, Embase, Scopus, Cochrane) for studies from 2015-2025.
- Included in vitro and preclinical in vivo studies evaluating Hypocrellin-mediated antimicrobial PDT, with quality assessment.
Key Points:
- Hypocrellin-mediated aPDT effectively reduced microbial loads in planktonic and biofilm states against resistant pathogens, including Candida albicans, Candida auris, Cutibacterium acnes, and Staphylococcus aureus.
- The mechanism involves ROS-mediated apoptosis, membrane disruption, and mitochondrial dysfunction with low mammalian cell toxicity.
- Enhanced efficacy was observed with Hypocrellin in nanocarriers or combined with other therapies, though treatment parameters showed heterogeneity.
Conclusions:
- Hypocrellin-based PDT exhibits significant preclinical antimicrobial efficacy and safety, positioning it as a potential alternative to conventional antibiotics.
- Standardized protocols and clinical trials are essential to validate its long-term safety and translational potential.
- The ROS-dependent mechanism of PDT offers an advantage in combating drug-resistant infections.
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