Natural Photosensitizers in Antimicrobial Photodynamic Therapy
Природные фотосенсибилизаторы в антимикробной фотодинамической терапии
2021-05-21
SCID: 54.1/dz89fbzf
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antimicrobial photodynamic therapyantimicrobial resistancenatural photosensitizersreactive oxygen speciessonodynamic therapy
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Abstract (AI)
Health problems and reduced treatment effectiveness due to antimicrobial resistance have become important global problems and are important factors that negatively affect life expectancy. Antimicrobial photodynamic therapy (APDT) is constantly evolving and can minimize this antimicrobial resistance problem. Reactive oxygen species produced when nontoxic photosensitizers are exposed to light are the main functional components of APDT responsible for microbial destruction; therefore, APDT has a broad spectrum of target pathogens, such as bacteria, fungi, and viruses. Various photosensitizers, including natural extracts, compounds, and their synthetic derivatives, are being investigated. The main limitations, such as weak antimicrobial activity against Gram-negative bacteria, solubility, specificity, and cost, encourage the exploration of new photosensitizer candidates. Many additional methods, such as cell surface engineering, cotreatment with membrane-damaging agents, nanotechnology, computational simulation, and sonodynamic therapy, are also being investigated to develop novel APDT methods with improved properties. In this review, we summarize APDT research, focusing on natural photosensitizers used in in vitro and in vivo experimental models. In addition, we describe the limitations observed for natural photosensitizers and the methods developed to counter those limitations with emerging technologies.
Key Findings
1
APDT has potential to help address antimicrobial resistance because its oxidative mechanism targets bacteria, fungi, and viruses broadly.
2
Antimicrobial photodynamic therapy uses light-activated, nontoxic photosensitizers to generate reactive oxygen species that destroy diverse pathogens.
3
Emerging strategies—including cell-surface engineering, membrane-damaging cotreatments, nanotechnology, computational simulation, and sonodynamic therapy—aim to improve natural photosensitizer performance.
4
Natural extracts, compounds, and synthetic derivatives are being investigated as photosensitizers in in vitro and in vivo APDT models.
5
Natural photosensitizers face limitations including weak activity against Gram-negative bacteria, poor solubility, limited specificity, and high cost.
Research Object
Natural photosensitizers used in antimicrobial photodynamic therapy
Research Subject
Their antimicrobial efficacy, limitations, and enhancement strategies in in vitro and in vivo experimental models
Publication Details
Publication Date
2021-05-21
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