Improved Simulated-Daylight Photodynamic Therapy and Possible Mechanism of Ag-Modified TiO on Melanoma.

Int J Mol Sci

Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Institute of Biomedical Analytical Technology and Instrumentation, Xi'an Jiaotong University, Xi'an 710048, China.

Published: April 2023

Simulated-daylight photodynamic therapy (SD-PDT) may be an efficacious strategy for treating melanoma because it can overcome the severe stinging pain, erythema, and edema experienced during conventional PDT. However, the poor daylight response of existing common photosensitizers leads to unsatisfactory anti-tumor therapeutic effects and limits the development of daylight PDT. Hence, in this study, we utilized Ag nanoparticles to adjust the daylight response of TiO, acquire efficient photochemical activity, and then enhance the anti-tumor therapeutic effect of SD-PDT on melanoma. The synthesized Ag-doped TiO showed an optimal enhanced effect compared to Ag-core TiO. Doping Ag into TiO produced a new shallow acceptor impurity level in the energy band structure, which expanded optical absorption in the range of 400-800 nm, and finally improved the photodamage effect of TiO under SD irradiation. Plasmonic near-field distributions were enhanced due to the high refractive index of TiO at the Ag-TiO interface, and then the amount of light captured by TiO was increased to induce the enhanced SD-PDT effect of Ag-core TiO. Hence, Ag could effectively improve the photochemical activity and SD-PDT effect of TiO through the change in the energy band structure. Generally, Ag-doped TiO is a promising photosensitizer agent for treating melanoma via SD-PDT.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10138875PMC
http://dx.doi.org/10.3390/ijms24087061DOI Listing

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