Natural Photosensitizers for Light-Driven Microbial Control: Mechanistic Insights and Applications in Food Systems
Abstract
1. Introduction
2. Principles of Antimicrobial Photodynamic Therapy
3. Plant-Derived PSs Used in Food Preservation
4. Applications of Plant-Derived aPDT in Food Preservation
5. Conclusions and Future Perspectives
5.1. Conclusions
5.2. Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Pearson, A.J.; Mukherjee, K.; Fattori, V.; Lipp, M. Opportunities and Challenges for Global Food Safety in Advancing Circular Policies and Practices in Agrifood Systems. npj Sci. Food 2024, 8, 60. [Google Scholar] [CrossRef] [PubMed]
- Agagündüz, D.; Ayakdas, G.; Katırcıoglu, B.; Ozogul, F. Sustainable Food Technology a Comprehensive Approach to Nutrient Retention, Food Quality, and Safety. Sustain. Food Technol. 2025, 3, 1284–1308. [Google Scholar] [CrossRef]
- Ariyamuthu, R.; Albert, V.R.; Je, S. An Overview of Food Preservation Using Conventional and Modern Methods. J. Food Nutr. Sci. 2022, 10, 70–79. [Google Scholar] [CrossRef]
- Sheng, L.; Li, X.; Wang, L. Photodynamic Inactivation in Food Systems: A Review of Its Application, Mechanisms, and Future Perspective. Trends Food Sci. Technol. 2022, 124, 167–181. [Google Scholar] [CrossRef]
- Henderson, B.W.; Dougherty, T. How Does Photodynamic Therapy Work? Photochem. Photobiol. 1992, 55, 145–157. [Google Scholar] [CrossRef]
- Dube, E.; Okuthe, G.E. Nanocurcumin and Curcumin-Loaded Nanoparticles in Antimicrobial Photodynamic Therapy: Mechanisms and Emerging Applications. Micro 2025, 5, 39. [Google Scholar] [CrossRef]
- Ghulam, B.; Mukhtar, K.; Ahmed, W.; Faisal, M.; Modassar, M.; Nawaz, A.; Kieliszek, M.; Bhat, Z.F.; Muhammad, R. Natural Pigments: Anthocyanins, Carotenoids, Chlorophylls, and Betalains as Colorants in Food Products. Food Biosci. 2023, 52, 102403. [Google Scholar] [CrossRef]
- Dube, E. Plant-Derived Photosensitizers in Antimicrobial Photodynamic Therapy: Mechanisms, Advances, and Emerging Applications. Photochem 2026, 6, 17. [Google Scholar] [CrossRef]
- Masyita, A.; Hardinasinta, G.; Astuti, A.D.; Nur, I.; Nisha, A.; Nainu, F.; Kuraishi, T. Natural Pigments: Innovative Extraction Technologies and Their Potential Application in Health and Food Industries. Front. Pharmacol. 2025, 15, 1507108. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Z.; Chen, J.; Huang, X.; Muhammad, R.; Li, B. Natural Pigments in the Food Industry: Enhancing Stability, Nutritional Benefits, and Gut Microbiome Health. Food Chem. 2024, 460, 140514. [Google Scholar] [CrossRef]
- El-saadony, M.T.; Saad, A.M.; Mohammed, D.M.; Korma, S.A.; Alshahrani, M.Y.; Ahmed, A.E.; Ibrahim, E.H.; Salem, H.M.; Alkafaas, S.S.; Saif, A.M.; et al. Medicinal Plants: Bioactive Compounds, Biological Activities, Combating Multidrug-Resistant Microorganisms, and Human Health Benefits—A Comprehensive Review. Front. Immunol. 2025, 16, 1491777. [Google Scholar] [CrossRef] [PubMed]
- da Silva, J.F.P.; da Silva, T.R.L.P.; de Santana, A.L.F.; Gomes-Copeland, K.K.P.; Gomes, J.V.D.; Estrada-semprun, O.E.; Fonseca-bazzo, Y.M.; Magalhães, P.O.; Silveira, D. The Underexplored Chemical Diversity and Biological Potential of Amaryllidaceae from Cerrado. Discov. Plants 2025, 2, 240. [Google Scholar] [CrossRef]
- Dixon, R.A.; Dickinson, A.J. A Century of Studying Plant Secondary Metabolism—From “What?” to “Where, How, and Why?”. Plant Physiol. 2024, 195, 48–66. [Google Scholar] [CrossRef]
- Wainwright, M. Photodynamic Antimicrobial Chemotherapy (PACT). J. Antimicrob. Chemother. 1998, 42, 13–28. [Google Scholar] [CrossRef]
- Zhao, L.; Zhou, Y.; Yue, W.; Duan, D.; Liu, R.; Yang, L. Photodynamic Inactivation Using Natural Pigments: Dual-ROS Mechanisms, Delivery Strategies, and Applications in Food Preservation. LWT 2025, 235, 118617. [Google Scholar] [CrossRef]
- Hamblin, M.R.; Hasan, T. Photodynamic Therapy: A New Antimicrobial Approach to Infectious Disease? Photochem. Photobiol. Sci. 2004, 3, 436–450. [Google Scholar] [CrossRef] [PubMed]
- Kolarikova, M.; Dilenko, H.; Barton, K.; Lucie, T.; Malina, L.; Kolarova, H.; Bajgar, R. Photodynamic Therapy: Innovative Approaches for Antibacterial and Anticancer Treatments. Med. Res. Rev. 2023, 43, 717–774. [Google Scholar] [CrossRef] [PubMed]
- Wainwright, M.; Maisch, T.; Nonell, S.; Plaetzer, K.; Almeida, A.; Tegos, G.P.; Hamblin, M.R. Photoantimicrobials—Are We Afraid of the Light? Lancet Infect. Dis. 2017, 17, e49–e55. [Google Scholar] [CrossRef]
- Xiao, L.; Zheng, S.; Lin, Z.; Zhang, C.; Zhang, H.; Chen, J.; Wang, L. Singlet Oxygen in Food: A Review on Its Formation, Oxidative Damages, Quenchers, and Applications in Preservation. Antioxidants 2025, 14, 865. [Google Scholar] [CrossRef]
- Gonçalves, P.L.C. Photophysical Properties and Therapeutic Use of Natural Photosensitizers. J. Photochem. Photobiol. 2021, 7, 100052. [Google Scholar] [CrossRef]
- de Oliveira, A.B.; Ferrisse, T.M.; de Annunzio, S.R.; Franca, M.G.A.; Silva, M.G.d.V.; Cavalheiro, A.J.; Fontana, C.R.; Brighenti, F.L. In Vitro Evaluation of Photodynamic Activity of Plant Extracts from Senna Species against Microorganisms of Medical and Dental Interest. Pharmaceutics 2023, 15, 181. [Google Scholar] [CrossRef]
- Pereira, C.C.S.; Novaes, A.K.S.; Silva, J.C.R.; Muniz, I.P.R.; Lima, P.M.; Oliveira, M.E.S.; Gonc, C.V.; Rodrigues, I.V.S.; Lopes, A.J.; Jesus, F.B.; et al. Characterization of the Oxidative Profile, Damage Pathways, and Synergism of Photosensitizers in Antimicrobial Photodynamic Therapy against Methicillin-Resistant Staphylococcus Aureus. ACS Omega 2026, 11, 995–1011. [Google Scholar] [CrossRef]
- Sarker, M.A.R.; Ahn, Y.-H. Green Phytoextracts as Natural Photosensitizers in LED-Based Photodynamic Disinfection of Multidrug-Resistant Bacteria in Wastewater Effluent. Chemosphere 2022, 297, 134157. [Google Scholar] [CrossRef]
- Wang, X.; Wang, L.; Fekrazad, R.; Zhang, L.; Jiang, X.; He, G.; Wen, X. Polyphenolic Natural Products as Photosensitizers for Antimicrobial Photodynamic Therapy: Recent Advances and Future Prospects. Front. Immunol. 2023, 14, 1275859. [Google Scholar] [CrossRef]
- Hu, X.; Huang, Y.; Wang, Y.; Wang, X.; Hamblin, M.R. Antimicrobial Photodynamic Therapy to Control Clinically Relevant Biofilm Infections. Front. Microbiol. 2018, 9, 1299. [Google Scholar] [CrossRef] [PubMed]
- Juan, C.A.; de la Lastra, J.M.P.; Plou, F.J.; Pérez-Lebeña, E. The Chemistry of Reactive Oxygen Species (ROS) Revisited: Outlining Their Role in Biological Macromolecules (DNA, Lipids and Proteins) and Induced Pathologies. Int. J. Mol. Sci. 2021, 22, 4642. [Google Scholar] [CrossRef]
- Ardakani, A.S.; Benedicenti, S.; Solimei, L.; Shahabi, S.; Afrasiabi, S. Reduction of Multispecies Biofilms on an Acrylic Denture Base Model by Antimicrobial Photodynamic Therapy Mediated by Natural Photosensitizers. Pharmaceuticals 2024, 17, 1232. [Google Scholar] [CrossRef]
- Pourhajibagher, M.; Bahrami, R.; Bazarjani, F.; Bahador, A. Anti-Multispecies Microbial Biofilms and Anti-Inflammatory Effects of Antimicrobial Photo-Sonodynamic Therapy Based on Acrylic Resin Containing Nano-Resveratrol. Photodiagn. Photodyn. Ther. 2023, 43, 103669. [Google Scholar] [CrossRef] [PubMed]
- Ki, W.; Choi, W.; Zhou, W.; Yuk, H. Antifungal Effect of Riboflavin Combined with 405 Nm Light-Emitting Diode Illumination on Rhizopus Stolonifer and Application for Tomato Preservation. Postharvest Biol. Technol. 2026, 231, 113886. [Google Scholar] [CrossRef]
- Kubrak, T.P.; Kołodziej, P.; Sawicki, J.; Mazur, A.; Koziorowska, K.; Aebisher, D. Some Natural Photosensitizers and Their Medicinal Properties for Use in Photodynamic Therapy. Molecules 2022, 27, 1192. [Google Scholar] [CrossRef] [PubMed]
- Hochma, E.; Yarmolinsky, L.; Khalfin, B.; Nisnevitch, M.; Ben-shabat, S.; Nakonechny, F. Antimicrobial Effect of Phytochemicals from Edible Plants. Processes 2021, 9, 2089. [Google Scholar] [CrossRef]
- Majiya, H. Food-Grade Dye Extracts/Photosensitisers from Non-Staple Plants: Prospects for Eco-Friendly Low-Cost Food Disinfection and Topical Biomedical Applications. In Dye Chemistry—Exploring Colour from Nature to Lab; Kumar, B., Ed.; IntechOpen: London, UK, 2024. [Google Scholar]
- Cossu, M.; Ledda, L.; Cossu, A. Emerging Trends in the Photodynamic Inactivation (PDI) Applied to the Food Decontamination. Food Res. Int. 2021, 144, 110358. [Google Scholar] [CrossRef]
- Ludacka, P.; Kubat, P.; Bosakova, Z.; Mosinger, J. Antibacterial Nanoparticles with Natural Photosensitizers Extracted from Spinach Leaveš. ACS Omega 2022, 7, 1505–1513. [Google Scholar] [CrossRef]
- Combuca, R.; Souza, S.; De Morais, P.; Cristina, B.; Adriane, L.; Pinto, D.M.; Rando, S.; Cesar, P.; Pereira, D.S.; Soares, M.; et al. Natural Photosensitizer-Loaded in Micellar Copolymer to Prevent Bovine Mastitis: A New Post-Dipping Protocol on Milking. Photodiagn. Photodyn. Ther. 2023, 42, 103337. [Google Scholar] [CrossRef]
- Meccatti, V.M.; Moura, L.D.S.; Pinto, J.G.; Ferreira-Strixino, J.; Hasna, A.A.; Figueiredo-Godoi, M.A.; Junqueira, J.C.; Marcucci, M.C.; Ramos, L.D.P.; Carvalho, A.C.T.; et al. Curcuma longa L. Extract and Photodynamic Therapy Are Effective against Candida Spp. and Do Not Show Toxicity In Vivo. Int. J. Dent. 2022, 2022, 5837864. [Google Scholar] [CrossRef]
- Dang, Y.; Yang, R.; Jia, T.; Liu, C.; Geng, S. Curcumin-Mediated Antimicrobial Photodynamic Therapy for Inactivating Mycobacterium Abscessus: A Promising Approach for Non-Tuberculous Mycobacterial Skin Infections. Lasers Med. Sci. 2025, 40, 9. [Google Scholar] [CrossRef]
- Enwemeka, C.S.; Bumah, V.V.; Castel, J.C.; Suess, S.L. Pulsed Blue Light, Saliva and Curcumin Significantly Inactivate Human Coronavirus. J. Photochem. Photobiol. B Biol. 2022, 227, 112378. [Google Scholar] [CrossRef] [PubMed]
- Keyvan, E.; Donmez, S.; Kahraman, H.A.; Tutun, H.; Calişkan, Z.; Rugji, J.; Keyvan, N.; Şen, E.; Gumus, H. Novel Photodynamic Inactivation Strategy for Salmonella enteritidis PT4 on Eggshells: Exploiting the Antimicrobial Potential of Curcumin and Carvacrol. Vet. Med. Sci. 2025, 11, e70135. [Google Scholar] [CrossRef] [PubMed]
- Pereira, F.; de Annunzio, R.S.; Lopes, T.d.A.; de Oliveira, K.T.; Cilli, E.M.; Barbugli, P.A.; Fontana, C.R. Efficacy of the Combination of P5 Peptide and Photodynamic Therapy Mediated by Bixin and Chlorin-E6 against Cutibacterium Acnes Biofilm. Photodiagn. Photodyn. Ther. 2022, 40, 103104. [Google Scholar] [CrossRef] [PubMed]
- Gonçalves, M.L.L.; da Mota, A.C.C.; Deana, A.M.; Cavalcante, L.A.d.S.; Horliana, A.C.R.T.; Pavani, C.; Motta, L.J.; Fernandes, K.P.S.; Mesquita-Ferrari, R.A.; Da Silva, D.F.T.; et al. Antimicrobial Photodynamic Therapy with Bixa Orellana Extract and Blue LED in the Reduction of Halitosis—A Randomized, Controlled Clinical Trial. Photodiagn. Photodyn. Ther. 2020, 30, 101751. [Google Scholar] [CrossRef]
- Saba, S.S.; Ghivari, S.; Pujar, M.; Maggavi, U. Antibacterial Efficacy of Herbal Extracts as Photosensitizers in Photodynamic Root Canal Disinfection. J. Conserv. Dent. Endod. 2025, 28, 420–425. [Google Scholar] [CrossRef]
- Khattab, A.Y.; Awad, N.E.; Fadeel, D.A.; Fadel, M. In Vitro Antimicrobial Photodynamic Activity of Tecoma Stans Yellow Flowers Extract Loaded in Nano-Emulsion. Bull. Pharm. Sci. Assiut Univ. 2025, 48, 175–186. [Google Scholar] [CrossRef]
- Pourhajibagher, M.; Bahado, A. Berberine-Loaded Human Dental Pulp Stem Cells Exosomes Potentiate Antimicrobial Photodynamic Therapy against Porphyromonas Gingivalis Biofilms. Photodiagn. Photodyn. Ther. 2026, 58, 105430. [Google Scholar] [CrossRef]
- Safai, M.S.; Khorsandi, K.; Falsafi, S. Effect of Berberine and Blue LED Irradiation on Combating Biofilm of Pseudomonas Aeruginosa and Staphylococcus Aureus. Curr. Microbiol. 2022, 79, 366. [Google Scholar] [CrossRef]
- Xie, Y.; Li, J.; Liu, C.; Zhang, X.; Zhang, X.; Wang, Q.; Zhang, L.; Yang, S. Antimicrobial Efficacy of Aloe-Emodin Mediated Photodynamic Therapy against Antibiotic-Resistant Pseudomonas Aeruginosa in Vitro. Biochem. Biophys. Res. Commun. 2024, 690, 149285. [Google Scholar] [CrossRef]
- Wu, J.; Pang, Y.; Liu, D.; Sun, J.; Bai, W. Photodynamic Inactivation of Staphylococcus Aureus Using Aloe-Emodin as Photosensitizer. Food Res. Int. 2024, 178, 113959. [Google Scholar] [CrossRef] [PubMed]
- Rinpan, R.; Panudta, V.; Phongkhedkham, R.; Janpitu, S.; Phongthai, S.; Klangpetch, W.; Khumsap, T. Effect of Riboflavin and Blue Light-Emitting Diode Irradiation on Microbial Inactivation and the Physicochemical Properties of Betel Leaves. Processes 2025, 13, 3130. [Google Scholar] [CrossRef]
- Afrasiabi, S.; Chiniforush, N. Antibacterial Potential of Riboflavin Mediated Blue Diode Laser Photodynamic Inactivation against Enterococcus Faecalis: A Laboratory Investigation. Photodiagn. Photodyn. Ther. 2023, 41, 103291. [Google Scholar] [CrossRef] [PubMed]
- Genovese, J.; Martins, D.M.; Silvetti, T.; Brasca, M.; Fracassetti, D.; Borgonovo, G.; Mazzini, S.; Limbo, S. Development of Photo-Active Chitosan-Based Films with Riboflavin for Enhanced Antimicrobial Food Packaging Applications. Molecules 2025, 30, 4166. [Google Scholar] [CrossRef]
- Priyadarshini, M.; Kanishka, S.; Thamaraiselvi, P.; Murugesan, S.; Vidhya, S.; Nayak, S.; Roopan, S.M.; Raj, N.A.N. Green Synthesis of Hypericin from Hypericum Perforatum (St. John’s Wort) for Photodynamic Antibacterial Treatment against Staphylococcus aureus and Escherichia coli. Nat. Prod. Res. 2025, 1–8. [Google Scholar] [CrossRef]
- Zhao, L.; Zhao, Q.; Shang, G.; Jiang, W.; Shen, Q.; Ke, J.; Ma, Y.; Zhanga, L.; Biana, H. Natural Yam Pigment as a Dual-Type ROS Photosensitizer: Mechanism, Biosafety, and Application in Fresh-Cut Produce. J. Sci. Food Agric. 2025, 105, 8706–8716. [Google Scholar] [CrossRef]
- Tasso, T.T.; Schlothauer, J.C.; Junqueira, H.C.; Matias, T.A.; Araki, K.; Antonio, F.C.T.; Mello, P.H.; Baptista, M.S. Photobleaching Efficiency Parallels the Enhancement of Membrane Damage for Porphyrazine Photosensitizers Photobleaching Efficiency Parallels the Enhancement of Membrane Damage for Porphyrazine Photosensitizers. J. Am. Chem. Soc. 2019, 141, 15547–15556. [Google Scholar] [CrossRef]
- Przygoda, M.; Bartusik-Aebisher, D.; Dynarowicz, K.; Cieslar, G.; Kawczyk-Krupka, A.; Aebisher, D. Cellular Mechanisms of Singlet Oxygen in Photodynamic Therapy. Int. J. Mol. Sci. 2023, 24, 16890. [Google Scholar] [CrossRef]
- Szewczyk, G.; Mokrzynski, K. Concentration-Dependent Photoproduction of Singlet Oxygen by Common Photosensitizers. Molecules 2025, 30, 1130. [Google Scholar] [CrossRef] [PubMed]
- Yuan, Y.; Liu, Q.; Huang, Y.; Qi, M.; Yan, H.; Li, W.; Zhuang, H. Antibacterial Efficacy and Mechanisms of Curcumin-Based Photodynamic Treatment against Staphylococcus Aureus and Its Application in Juices. Molecules 2022, 27, 7136. [Google Scholar] [CrossRef]
- Le, T.D.; Phasupan, P.; Nguyen, L.T. Antimicrobial Photodynamic Efficacy of Selected Natural Photosensitizers against Food Pathogens: Impacts and Interrelationship of Process Parameters. Photodiagn. Photodyn. Ther. 2020, 32, 102024. [Google Scholar] [CrossRef]
- Yue, Y.; Li, B.; Wang, D.; Wu, C.; Li, Z.; Liu, B. Optimizing Photosensitizers with Type I and Type II ROS Generation Through Modulating Triplet Lifetime and Intersystem Crossing Efficiency. Adv. Funct. Mater. 2025, 35, 2414542. [Google Scholar] [CrossRef]
- Qin, Y.; Qian, C.; Li, W.; Wang, Q.; Sheng, Q.; Chen, Z.; Zhang, W.; Li, W.; Ge, G.; Yan, Z.; et al. Oxidative Stress: Molecular Mechanisms, Diseases, and Therapeutic Targets. MedComm 2026, 7, e70600. [Google Scholar] [CrossRef]
- Cui, S.; Guo, X.; Wang, S.; Wei, Z.; Huang, D.; Zhang, X.; Zhu, T.C.; Huang, Z. Singlet Oxygen in Photodynamic Therapy. Pharmaceuticals 2024, 17, 1274. [Google Scholar] [CrossRef] [PubMed]
- Jomova, K.; Raptova, R.; Alomar, S.Y.; Alwasel, S.H.; Nepovimova, E.; Kuca, K.; Valko, M. Reactive Oxygen Species, Toxicity, Oxidative Stress, and Antioxidants: Chronic Diseases and Aging; Springer: Berlin/Heidelberg, Germany, 2023; Volume 97. [Google Scholar]
- Dragoev, S.G. Lipid Peroxidation in Muscle Foods: Impact on Quality, Safety and Human Health. Foods 2024, 13, 797. [Google Scholar] [CrossRef]
- Meitha, K.; Pramesti, Y.; Suhandono, S. Reactive Oxygen Species and Antioxidants in Postharvest Vegetables and Fruits. Int. J. Food Sci. 2020, 2020, 8817778. [Google Scholar] [CrossRef]
- Nkune, N.W.; Abrahamse, H. Novel Nanoplatforms for Antimicrobial Photodynamic Inactivation of Bacterial Biofilm Infections. Photodiagn. Photodyn. Ther. 2025, 56, 105297. [Google Scholar] [CrossRef]
- Dong, J.; Tang, J.; Li, X.; Zeng, Y.; Su, X.; He, Y.; Liu, X. Latest Developments in Photosensitizers: Improving Stability, Specificity and Responsiveness. Future Med. Chem. 2025, 17, 1297–1314. [Google Scholar] [CrossRef]
- Kumar, A.; Pal, P.; Pandey, B.; Goksen, G.; Sahoo, U.K.; Lorenzo, J.M.; Sarangi, P.K. Food Chemistry: X Development of “Smart Foods” for Health by Nanoencapsulation: Novel Technologies and Challenges. Food Chem. X 2023, 20, 100910. [Google Scholar] [CrossRef]
- Delcanale, P.; Abbruzzetti, S.; Viappiani, C. Photodynamic Treatment of Pathogens. Riv. Nuovo C. 2022, 45, 407–459. [Google Scholar] [CrossRef]
- Delarampour, A.; Khashyar, F.; Bazargani, A.; Shirazi, P.S.; Mohagheghzadeh, N.; Moradi, F. Beyond Traditional Therapies: A Narrative Overview of Antimicrobial Photodynamic Therapy in Combating Bacterial and Viral Infections. Arch. Microbiol. 2026, 208, 11. [Google Scholar] [CrossRef]
- Lu, B.; Zhao, Y. Photooxidation of Phytochemicals in Food and Control: A Review. Ann. N. Y. Acad. Sci. 2017, 1398, 72–82. [Google Scholar] [CrossRef]
- Negi, A. Natural Dyes and Pigments: Sustainable Applications and Future Scope. Sustain. Chem. 2025, 6, 23. [Google Scholar] [CrossRef]
- Zabot, G.L.; Rodrigues, F.S.; Ody, L.P.; Vin, M.; Herrera, E.; Palacin, H.; Javier, S.C.; Best, I.; Olivera-montenegro, L. Encapsulation of Bioactive Compounds for Food and Agricultural Applications. Polymers 2022, 14, 4194. [Google Scholar] [CrossRef]
- Jurić, S.; Jurić, M.; Król-kilińska, Ż.; Vlahoviček-kahlina, K.; Vinceković, M.; Dragović-uzelac, V.; Donsì, F. Sources, Stability, Encapsulation and Application of Natural Pigments in Foods. Food Rev. Int. 2022, 38, 1735–1790. [Google Scholar] [CrossRef]
- Damyeh, M.S.; Mereddy, R.; Netzel, M.E.; Sultanbawa, Y. An Insight into Curcumin-Based Photosensitization as a Promising and Green Food Preservation Technology. Compr. Rev. Food Sci. Food Saf. 2020, 19, 1727–1759. [Google Scholar] [CrossRef]
- Dube, E. Nanoformulated Curcumin for Food Preservation: A Natural Antimicrobial in Active and Smart Packaging Systems. Appl. Biosci. 2025, 4, 46. [Google Scholar] [CrossRef]
- Saraiva, B.B.; Sestito, J.M.B.; Bezerra, R.A.D.; de Oliveira, G.L.M.; da Silva Júnior, R.C.; Machado, R.R.B.; Nakamura, C.V.; Alfieri, A.A.; dos Santos Pozza, M.S. Reduction of Staphylococcus Aureus in Vitro and in Milk by Photodynamic Inactivation Using Riboflavin and Curcumin as Photosensitizers: Cell Damage and Effects on Product Quality. J. Photochem. Photobiol. A Chem. 2024, 446, 115120. [Google Scholar] [CrossRef]
- Shen, Y.F.; Ma, W.P.; Ma, R.H.; Thakur, K.; Ni, Z.J.; Wang, W.; Wei, Z.J. Curcumin-Mediated Photodynamic Treatment Enhances Storage Quality of Fresh Wolfberries via Antioxidant System Modulation. Foods 2025, 14, 2843. [Google Scholar] [CrossRef]
- Dong, S.; Chen, L.; Li, S.; Feng, K.; Liu, G.; Dong, H.; Xu, G.; Ou, H.; Liu, Y.; Zhao, Y.; et al. Antifungal Activity of Curcumin-Mediated Photodynamic Inactivation against Fusarium graminearum on Maize. Grain Oil Sci. Technol. 2025, 8, 21–31. [Google Scholar] [CrossRef]
- Yao, Y.; Zhang, W.; Tan, L.; Li, H.; Li, Y.; Xu, B. A Lipophilicity-Based Strategy: Curcumin-Mediated Photodynamic Inactivation Combined with Eugenol for Enhanced Bacon Preservation. Food Res. Int. 2026, 229, 118439. [Google Scholar] [CrossRef]
- Wang, J.J.; He, T.; Chen, L.; Xu, G.; Dong, S.; Zhao, Y.; Zheng, H.; Liu, Y.; Zeng, Q. Antibacterial Efficiency of the Curcumin-Mediated Photodynamic Inactivation Coupled with L-Arginine against Vibrio Parahaemolyticus and Its Application on Shrimp. Int. J. Food Microbiol. 2024, 411, 110539. [Google Scholar] [CrossRef] [PubMed]
- Zheng, S.; Yan, H.; Deng, P.; Zhu, J.; Lu, H. Enhancement of Curcumin-Mediated Photodynamic Inactivation against Pseudomonas fluorescens on Fish Fillets Combined with ε-Polylysine Hydrochloride. LWT-Food Sci. Technol. 2025, 217, 117344. [Google Scholar] [CrossRef]
- Yang, H.; Wang, M.; Ma, X.; Wang, X.; Duan, M.; Lu, Y.; Zhang, N.; Zhang, C.; Shan, Z.; Shi, C. Utilizing Curcumin-Mediated Blue Light Photodynamic Inactivation for Vibrio vulnificus Control and Quality Preservation of Cynoglossus semilaevis. Food Res. Int. 2025, 214, 116648. [Google Scholar] [CrossRef]
- Lu, H.; Zheng, S.; Fang, J.; Zhu, J. Photodynamic Inactivation of Spoilers Pseudomonas lundensis and Brochothrix thermosphacta by Food-Grade Curcumin and Its Application on Ground Beef. Innov. Food Sci. Emerg. Technol. 2023, 87, 103410. [Google Scholar] [CrossRef]
- Pei, J.; Zhu, S.; Liu, Y.; Song, Y.; Xue, F.; Xiong, X.; Li, C. Photodynamic Effect of Riboflavin on Chitosan Coatings and the Application in Pork Preservation. Molecules 2022, 27, 1355. [Google Scholar] [CrossRef]
- Jing, J.; He, T.; Li, H.; Dong, H.; Liu, Y.; Zeng, Q.; Zhao, Y. Enhancement of Riboflavin-Mediated Photodynamic Inactivation against Salmonella on Tuna Fillets Coupled with Slightly Basic Electrolyzed Water. Food Control 2024, 162, 110441. [Google Scholar] [CrossRef]
- Lin, S.; Zhang, J.; Stekel, D.; Shi, Y.; Yang, H.; Gao, J.; Tan, B.K.; Hu, J. The Food Matrix Properties Influence the Antibacterial Effectiveness of Photodynamic and Sonodynamic Treatments. Innov. Food Sci. Emerg. Technol. 2024, 93, 103630. [Google Scholar] [CrossRef]
- Hu, X.; Zhang, H.; Wang, Y.; Shiu, B.-C.; Lin, J.-H.; Zhang, S.; Lou, C.-W.; Li, T.-T. Synergistic Antibacterial Strategy Based on Photodynamic Therapy: Progress and Perspectives. Chem. Eng. J. 2022, 450, 138129. [Google Scholar] [CrossRef]
- Valdez-Lara, A.G.; Jaramillo-Granada, Á.M.; Ortega-Zambrano, D.; García-Marquez, E.; García-Fajardo, J.A.; Mercado-Uribe, H.; Ruiz-Suárez, J.C. Disruption of Biological Membranes by Hydrophobic Molecules: A Way to Inhibit Bacterial Growth. Front. Microbiol. 2022, 15, 1478519. [Google Scholar] [CrossRef] [PubMed]
- Khan, M.; Ali, S.; Nazar, T.; Al, I.; Saqib, S.; Ullah, F.; Ayaz, A.; Zaman, W. The Key Roles of ROS and RNS as a Signaling Molecule in Plant—Microbe Interactions. Antioxidants 2023, 12, 268. [Google Scholar] [CrossRef]



| Plant Source | Pigment/Extract | Absorption Peak (nm) | Concentration | Light Source/Dose | ΦΔ | aPDT Effect | Ref. |
|---|---|---|---|---|---|---|---|
| Spinacia oleracea | Chlorophyll extract encapsulated in polystyrene NPs | 664 | 10−5 mol L−1 | 36 W red LED | 0.64 | Significant reduction in E. coli viability | [34] |
| Tetragonia tetragonoides (New Zealand spinach) | Chlorophyll-rich extract in Pluronic® F127 micelles (Ludwigshafen am Rhein, Germany) | 665 | 27.2 mg mL−1 | Red LED; in vitro 6.12 J cm−2; in vivo 0.102 J cm−2 | – | In vitro, the treatment was effective against Staphylococcus aureus (MIC 6.8 mg mL−1). In vivo, it significantly reduced coliform and Staphylococcus populations on cow teat surfaces compared to an iodine-based control treatment. | [35] |
| Curcuma longa | Glycolic extract | 418 | 100 mg mL−1 | Blue LED, 25 J cm−2 (110 mW cm−2) | – | No absorption in 450 nm region | [36] |
| Curcuma longa | Curcumin | 418 | 100 mg mL−1 | Blue LED, 25 J cm−2 (110 mW cm−2) | - | Complete inactivation of Mycobacterium abscessus; strong activity against Candida albicans and C. tropicalis (~5-log reduction) | [36] |
| Curcuma longa L. | Curcumin | 400–430 | 100 µM | Xenon lamp, 48 J cm−2 | – | Complete inactivation of Mycobacterium abscessus | [37] |
| Curcuma longa L. | Curcumin | 425 | 10 µM | Pulsed blue light, 21.6 J cm−2 (12 mW cm−2) | – | Inactivation of HCoV-OC43 | [38] |
| Curcuma longa L. | Curcumin | 405 | 325 µg mL−1 | LEDs, 49 mW cm−2 for 15–45 min | – | Complete inhibition of Salmonella enteritidis (temperature-dependent efficacy) | [39] |
| Bixa orellana | Bixin | 460 | 25–100 µg mL−1 | Blue LED, 28.3–80 J cm−2 (55–154.98 mW cm−2) | 0.0006 | Bactericidal against Cutibacterium acnes in both planktonic and biofilm phases | [40] |
| Bixa orellana | B. orellana extract | 460 | 20% w/v | 6.37 J cm−2 | – | Rapid reduction in halitosis | [41] |
| Beta vulgaris | B. vulgaris extract | 480–540 | 0.5 mg mL−1 | 640 nm laser, 240 mW cm−2 for 120 s | – | Reduced mean bacterial load to 114.75 CFU mL−1; limited efficacy due to mismatch with 640 nm laser | [42] |
| Tecoma stans | Crude flower extract | 400–450 | 8 mg mL−1 | 90–100 mW cm−2 | – | Significant eradication of S. aureus and C. albicans | [43] |
| Berberis vulgaris | Berberine loaded into human dental pulp stem cell-derived exosomes | 344–422 | 31.2 µg mL−1 | 405 nm laser, 25.8 J cm−2 (0.43 W cm−2, 60 s) | – | Reduced Porphyromonas gingivalis biofilm biomass | [44] |
| Berberis vulgaris | Berberine | 465 | 50–500 µg mL−1 | Blue LED, 34 mW cm−2 for 15 min | – | Strong antibacterial activity; biofilm destruction at higher doses | [45] |
| Aloe vera | Aloe-emodin | 430 | 100 µM | 80 mW cm−2 (48–192 J cm−2) | – | 4.17–5.22 log reduction in P. aeruginosa; complete inactivation of MDR strains at 192 J cm−2 | [46] |
| Aloe vera | Aloe-emodin | 430 | 1 µg mL−1 | Blue LED, 40 mW cm−2 | 0.57 | Significant inhibition of S. aureus | [47] |
| Green leafy vegetables | Riboflavin (Vitamin B2) | 445–470 | 125 µM | Blue LED, 11.72 J cm−2 (30 min) | – | 5.3 log reduction (E. coli), 6.2 log (Listeria innocua) | [48] |
| Green leafy vegetables | Riboflavin | 450 | 6.25–100 µM | Blue diode laser, 12–30 J cm−2 | – | Dose-dependent reduction in Enterococcus faecalis | [49] |
| Green leafy vegetables | Riboflavin | 450 | 60 mg L−1 | Blue LED, 0.92 J cm−2 | – | Antimicrobial activity against Pseudomonas fluorescens | [50] |
| Hypericum perforatum | Hypericin | – | 50 µL | Full-spectrum light, 14.02 J cm−2 | – | Active against S. aureus and E. coli | [51] |
| Lamiaceae spp. | Carvacrol | 405 | 125 µg mL−1 | LED, 49 mW cm−2 for 15–45 min | – | Complete inhibition of Salmonella enteritidis | [39] |
| PS | Target Microorganisms | Food Preservation Application | Method of Applying PS for Food Preservation | Ref. |
|---|---|---|---|---|
| Aloe-emodin | S. aureus | Freshly squeezed apple juice | Mixing | [47] |
| Curcumin | S. aureus | Liquid foods, namely mango and pineapple juices, however, it was not effective against carrot juice | Mixing | [56] |
| S. aureus | Skimmed milk | Mixing | [75] | |
| - | Wolfberry fruit | Coating | [76] | |
| Fusarium graminearum | Maize | Coating | [77] | |
| Leuconostoc mesenteroides and Carnobacterium maltaromaticum | Bacon | Applied directly to the bacon surface prior to aPDT treatment and subsequent chilled vacuum packaging | [78] | |
| Vibrio parahaemolyticus | Shrimp | The shrimp were soaked in a suspension containing curcumin. | [79] | |
| P. fluorescens | Fish fillets | Fish fillets were soaked curcumin solution | [80] | |
| V. vulnificus | Fillets of Cynoglossus semilaevis | Fish fillets were spotted with curcumin solution | [81] | |
| P. lundensis and Brochothrix thermosphacta | Beef | Ground beef was mixed with curcumin | [82] | |
| S. enteritidis PT4 | Decontamination of eggshells | Spread to cover the egg surface | [39] | |
| Riboflavin | E. coli and L. innocua | Betel leaves | Fresh betel leaves were submerged in the riboflavin solution resulting in uniform surface coating | [48] |
| P. fluorescens | Active antimicrobial food packaging films | Riboflavin was incorporated into a chitosan-based biopolymer matrix to develop active, light-activated antimicrobial packaging films | [50] | |
| S. aureus and E. coli | Pork | Pork soaked in the Riboflavin coating for 30 s | [83] | |
| R. stolonifer | Tomato | Tomatoes were submerged in a riboflavin solution, resulting in uniform surface coating | [29] | |
| S. aureus | Milk | Mixing | [75] | |
| S. typhimurium and S. enteritidis | Tuna fillets | Riboflavin was spread onto the surface of the fillets | [84] | |
| Carvacrol | S. enteritidis | Decontamination of eggshells | Spread to cover the egg surface | [39] |
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Dube, E.; Okuthe, G.E. Natural Photosensitizers for Light-Driven Microbial Control: Mechanistic Insights and Applications in Food Systems. Hygiene 2026, 6, 36. https://doi.org/10.3390/hygiene6020036
Dube E, Okuthe GE. Natural Photosensitizers for Light-Driven Microbial Control: Mechanistic Insights and Applications in Food Systems. Hygiene. 2026; 6(2):36. https://doi.org/10.3390/hygiene6020036
Chicago/Turabian StyleDube, Edith, and Grace Emily Okuthe. 2026. "Natural Photosensitizers for Light-Driven Microbial Control: Mechanistic Insights and Applications in Food Systems" Hygiene 6, no. 2: 36. https://doi.org/10.3390/hygiene6020036
APA StyleDube, E., & Okuthe, G. E. (2026). Natural Photosensitizers for Light-Driven Microbial Control: Mechanistic Insights and Applications in Food Systems. Hygiene, 6(2), 36. https://doi.org/10.3390/hygiene6020036

