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Antimicrobial photodynamic therapy - what we know and what we don't
Fabian Cieplik1,2, Dongmei Deng2, Wim Crielaard2
1a Department of Conservative Dentistry and Periodontology , University Medical Center Regensburg , Regensburg , Germany.
Abstract:
Considering increasing number of pathogens resistant towards commonly used antibiotics as well as antiseptics, there is a pressing need for antimicrobial approaches that are capable of inactivating pathogens efficiently without the risk of inducing resistances. In this regard, an alternative approach is the antimicrobial photodynamic therapy (aPDT). The antimicrobial effect of aPDT is based on the principle that visible light activates a per se non-toxic molecule, the so-called photosensitizer (PS), resulting in generation of reactive oxygen species that kill bacteria unselectively via an oxidative burst. During the last 10-20 years, there has been extensive in vitro research on novel PS as well as light sources, which is now to be translated into clinics. In this review, we aim to provide an overview about the history of aPDT, its fundamental photochemical and photophysical mechanisms as well as photosensitizers and light sources that are currently applied for aPDT in vitro. Furthermore, the potential of resistances towards aPDT is extensively discussed and implications for proper comparison of in vitro studies regarding aPDT as well as for potential application fields in clinical practice are given. Overall, this review shall provide an outlook on future research directions needed for successful translation of promising in vitro results in aPDT towards clinical practice.
Insights
Antimicrobial photodynamic therapy (aPDT) offers a promising alternative to antibiotics by using light-activated photosensitizers to generate reactive oxygen species that kill pathogens. This approach shows potential for clinical use due to its low risk of inducing resistance.
Area of Science:
- Photochemistry
- Photophysics
- Microbiology
Background:
- Rising antibiotic resistance necessitates novel antimicrobial strategies.
- Antimicrobial photodynamic therapy (aPDT) emerges as a viable alternative.
- aPDT utilizes light-activated photosensitizers to generate reactive oxygen species for pathogen inactivation.
Purpose of the Study:
- To review the history, mechanisms, and current applications of aPDT.
- To discuss the potential for resistance development against aPDT.
- To provide an outlook on translating aPDT from in vitro research to clinical practice.
Main Methods:
- Review of existing literature on aPDT.
- Analysis of photochemical and photophysical principles of aPDT.
- Discussion of photosensitizers and light sources used in aPDT.
Main Results:
- aPDT effectively inactivates pathogens through oxidative bursts.
- Extensive in vitro research exists, with ongoing efforts for clinical translation.
- The potential for resistance to aPDT is considered and discussed.
Conclusions:
- aPDT presents a promising strategy to combat antibiotic-resistant pathogens.
- Further research is needed to bridge the gap between in vitro findings and clinical application.
- Careful consideration of study design and potential resistance is crucial for successful implementation.
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