Optimization of singlet oxygen production from photosensitizer-incorporated, medically relevant hydrogels.

De Baróid, Áine T; McCoy, Colin P; Craig, Rebecca A; Carson, Louise; Andrews, Gavin P; Jones, David S; Gorman, Sean P · J Biomed Mater Res B Appl Biomater · 2017

basic_science · Level V

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Abstract

Photodynamic therapy and photodynamic antimicrobial chemotherapy are widely used, but despite this, the relationships between fluence, wavelength of irradiation and singlet oxygen (<sup>1</sup> O<sub>2</sub> ) production are poorly understood. To establish the relationships between these factors in medically relevant materials, the effect of fluence on <sup>1</sup> O<sub>2</sub> production from a tetrakis(4-N-methylpyridyl)porphyrin (TMPyP)-incorporated 2-hydroxyethyl methacrylate: methyl methacrylate: methacrylic acid (HEMA: MMA:MAA) copolymer, a total energy of 50.48 J/cm<sup>2</sup> , was applied at varying illumination power, and times. <sup>1</sup> O<sub>2</sub> production was characterized using anthracene-9,10-dipropionic acid, disodium salt (ADPA) using a recently described method. Using two light sources, a white LED array and a white halogen source, the LED array was found to produce less <sup>1</sup> O<sub>2</sub> than the halogen source when the same power (over 500 - 600 nm) and time conditions were applied. Importantly, it showed that the longest wavelength Q band (590 nm) is primarily responsible for <sup>1</sup> O<sub>2</sub> generation, and that a linear relationship exists between increasing power and time and the production of singlet oxygen. © 2015 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 105B: 320-326, 2017.

Medical subject headings