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Functionalized Scintillating Nanotubes for Simultaneous Radio- and Photodynamic Therapy of Cancer.


ABSTRACT: As a model radio-photodynamic therapy (RPDT) agent, we developed a multicomponent nanomaterial by anchoring conjugated chromophores on the surface of scintillating chrysotile nanotubes. Its ultimate composition makes the system a scintillation-activated photosensitizer for the singlet oxygen production. This nanomaterial shows a remarkable ability to enhance the production of singlet oxygen in an aqueous environment, under X-ray irradiation, boosting its production by almost 1 order of magnitude. Its efficiency as a coadjutant for radiotherapy has been tested in vitro, showing a striking efficacy in enhancing both the prompt cytotoxicity of the ionizing radiation and the long-term cytotoxicity given by radiation-activated apoptosis. Notably, the beneficial activity of the RPDT agent is prominent at low levels of delivered doses comparable to the one employed in clinical treatments. This opens the possibility of effectively reducing the therapy exposure and consequently undesired collateral effects due to prolonged exposure of patients to high-energy radiation.

SUBMITTER: Villa I 

PROVIDER: S-EPMC8153399 | biostudies-literature | 2021 Mar

REPOSITORIES: biostudies-literature

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Functionalized Scintillating Nanotubes for Simultaneous Radio- and Photodynamic Therapy of Cancer.

Villa Irene I   Villa Chiara C   Crapanzano Roberta R   Secchi Valeria V   Tawfilas Massimo M   Trombetta Elena E   Porretti Laura L   Brambilla Andrea A   Campione Marcello M   Torrente Yvan Y   Vedda Anna A   Monguzzi Angelo A  

ACS applied materials & interfaces 20210315 11


As a model radio-photodynamic therapy (RPDT) agent, we developed a multicomponent nanomaterial by anchoring conjugated chromophores on the surface of scintillating chrysotile nanotubes. Its ultimate composition makes the system a scintillation-activated photosensitizer for the singlet oxygen production. This nanomaterial shows a remarkable ability to enhance the production of singlet oxygen in an aqueous environment, under X-ray irradiation, boosting its production by almost 1 order of magnitude  ...[more]

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