Antimicrobial Photodynamic Therapy to Control Clinically Relevant Biofilm Infections
Антимикробная фотодинамическая терапия для контроля клинически значимых инфекций, связанных с биоплёнками
2018-06-27
SCID: 54.1/53zur7q6
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antimicrobial photodynamic therapybiofilm eradicationbiofilm infectionsphotosensitizersreactive oxygen species
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Abstract (AI)
Biofilm describes a microbially-derived sessile community in which microbial cells are firmly attached to the substratum and embedded in extracellular polymeric matrix. Microbial biofilms account for up to 80% of all bacterial and fungal infections in humans. Biofilm-associated pathogens are particularly resistant to antibiotic treatment, and thus novel antibiofilm approaches needed to be developed. Antimicrobial Photodynamic therapy (aPDT) had been recently proposed to combat clinically relevant biofilms such as dental biofilms, ventilator associated pneumonia, chronic wound infections, oral candidiasis, and chronic rhinosinusitis. aPDT uses non-toxic dyes called photosensitizers (PS), which can be excited by harmless visible light to produce reactive oxygen species (ROS). aPDT is a multi-stage process including topical PS administration, light irradiation, and interaction of the excited state with ambient oxygen. Numerous in vitro and in vivo aPDT studies have demonstrated biofilm-eradication or substantial reduction. ROS are produced upon photo-activation and attack adjacent targets, including proteins, lipids and nucleic acids present within the biofilm matrix, on the cell surface and inside the microbial cells. Damage to non-specific targets leads to the destruction of both planktonic cells and biofilms. The review aims to summarize the progress of aPDT in destroying biofilms and the mechanisms mediated by ROS. Finally, a brief section provides suggestions for future research.
Key Findings
1
Antimicrobial photodynamic therapy (aPDT) is presented as a promising antibiofilm approach for dental, respiratory, wound, oral candidiasis, and rhinosinusitis infections.
2
Biofilms account for up to 80% of human bacterial and fungal infections and exhibit particularly high resistance to antibiotic treatment.
3
In vitro and in vivo studies have demonstrated biofilm eradication or substantial biofilm reduction using aPDT.
4
Reactive oxygen species damage proteins, lipids, and nucleic acids in the biofilm matrix, on cell surfaces, and within microbial cells, enabling destruction of both biofilms and planktonic cells.
5
aPDT activates non-toxic photosensitizers with visible light in the presence of oxygen, generating reactive oxygen species that mediate antimicrobial activity.
Research Object
Clinically relevant microbial biofilms, including dental biofilms, ventilator-associated pneumonia biofilms, chronic wound biofilms, oral candidiasis biofilms, and chronic rhinosinusitis biofilms
Research Subject
Antimicrobial photodynamic therapy-mediated biofilm destruction or reduction and the reactive oxygen species mechanisms underlying damage to biofilm and microbial-cell components
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2018-06-27
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