Cellular Mechanisms of Singlet Oxygen in Photodynamic Therapy

Author:

Przygoda Maria1ORCID,Bartusik-Aebisher Dorota2ORCID,Dynarowicz Klaudia3ORCID,Cieślar Grzegorz4ORCID,Kawczyk-Krupka Aleksandra4ORCID,Aebisher David5ORCID

Affiliation:

1. Students English Division Science Club, Medical College of The University of Rzeszów, 35-315 Rzeszów, Poland

2. Department of Biochemistry and General Chemistry, Medical College of The University of Rzeszów, 35-959 Rzeszów, Poland

3. Center for Innovative Research in Medical and Natural Sciences, Medical College of The University of Rzeszów, 35-310 Rzeszów, Poland

4. Department of Internal Medicine, Angiology and Physical Medicine, Center for Laser Diagnostics and Therapy, Medical University of Silesia in Katowice, Batorego 15 Street, 41-902 Bytom, Poland

5. Department of Photomedicine and Physical Chemistry, Medical College of The University of Rzeszów, 35-959 Rzeszów, Poland

Abstract

In this review, we delve into the realm of photodynamic therapy (PDT), an established method for combating cancer. The foundation of PDT lies in the activation of a photosensitizing agent using specific wavelengths of light, resulting in the generation of reactive oxygen species (ROS), notably singlet oxygen (1O2). We explore PDT’s intricacies, emphasizing its precise targeting of cancer cells while sparing healthy tissue. We examine the pivotal role of singlet oxygen in initiating apoptosis and other cell death pathways, highlighting its potential for minimally invasive cancer treatment. Additionally, we delve into the complex interplay of cellular components, including catalase and NOX1, in defending cancer cells against PDT-induced oxidative and nitrative stress. We unveil an intriguing auto-amplifying mechanism involving secondary singlet oxygen production and catalase inactivation, offering promising avenues for enhancing PDT’s effectiveness. In conclusion, our review unravels PDT’s inner workings and underscores the importance of selective illumination and photosensitizer properties for achieving precision in cancer therapy. The exploration of cellular responses and interactions reveals opportunities for refining and optimizing PDT, which holds significant potential in the ongoing fight against cancer.

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference142 articles.

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2. Chemistry and biology of reactive oxygen species in signaling or stress responses;Dickinson;Nat. Chem. Biol.,2011

3. Fitzgerald, F. (2017). Photodynamic Therapy (PDT): Principles, Mechanisms and Applications, Nova Science Publishers, Inc.

4. Rodrigues, J.A.O. (2019). Therapy in Invasive Medical Devices with Image. [Ph.D. Thesis, University of Minho].

5. Photodynamic therapy in oncology;Kinsella;Expert Opin. Pharmacother.,2001

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