Cargando…

Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy

Cerenkov-induced photodynamic therapy (CR-PDT) with the use of Gallium-68 ((68)Ga) as an unsealed radioactive source has been proposed as an alternative strategy to X-ray-induced photodynamic therapy (X-PDT). This new strategy still aims to produce a photodynamic effect with the use of nanoparticles...

Descripción completa

Detalles Bibliográficos
Autores principales: Schneller, Perrine, Collet, Charlotte, Been, Quentin, Rocchi, Paul, Lux, François, Tillement, Olivier, Barberi-Heyob, Muriel, Schohn, Hervé, Daouk, Joël
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963809/
https://www.ncbi.nlm.nih.gov/pubmed/37259295
http://dx.doi.org/10.3390/ph16020143
_version_ 1784896346896990208
author Schneller, Perrine
Collet, Charlotte
Been, Quentin
Rocchi, Paul
Lux, François
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
Daouk, Joël
author_facet Schneller, Perrine
Collet, Charlotte
Been, Quentin
Rocchi, Paul
Lux, François
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
Daouk, Joël
author_sort Schneller, Perrine
collection PubMed
description Cerenkov-induced photodynamic therapy (CR-PDT) with the use of Gallium-68 ((68)Ga) as an unsealed radioactive source has been proposed as an alternative strategy to X-ray-induced photodynamic therapy (X-PDT). This new strategy still aims to produce a photodynamic effect with the use of nanoparticles, namely, AGuIX. Recently, we replaced Gd from the AGuIX@ platform with Terbium (Tb) as a nanoscintillator and added 5-(4-carboxyphenyl succinimide ester)-10,15,20-triphenylporphyrin (P1) as a photosensitizer (referred to as AGuIX@Tb-P1). Although Cerenkov luminescence from (68)Ga positrons is involved in nanoscintillator and photosensitizer activation, the cytotoxic effect obtained by PDT remains controversial. Herein, we tested whether free (68)Ga could substitute X-rays of X-PDT to obtain a cytotoxic phototherapeutic effect. Results were compared with those obtained with AGuIX@Gd-P1 nanoparticles. We showed, by Monte Carlo simulations, the contribution of Tb scintillation in P1 activation by an energy transfer between Tb and P1 after Cerenkov radiation, compared to the Gd-based nanoparticles. We confirmed the involvement of the type II PDT reaction during (68)Ga-mediated Cerenkov luminescence, id est, the transfer of photon to AGuIX@Tb-P1 which, in turn, generated P1-mediated singlet oxygen. The effect of (68)Ga on cell survival was studied by clonogenic assays using human glioblastoma U-251 MG cells. Exposure of pre-treated cells with AGuIX@Tb-P1 to (68)Ga resulted in the decrease in cell clone formation, unlike AGuIX@Gd-P1. We conclude that CR-PDT could be an alternative of X-PDT.
format Online
Article
Text
id pubmed-9963809
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-99638092023-02-26 Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy Schneller, Perrine Collet, Charlotte Been, Quentin Rocchi, Paul Lux, François Tillement, Olivier Barberi-Heyob, Muriel Schohn, Hervé Daouk, Joël Pharmaceuticals (Basel) Article Cerenkov-induced photodynamic therapy (CR-PDT) with the use of Gallium-68 ((68)Ga) as an unsealed radioactive source has been proposed as an alternative strategy to X-ray-induced photodynamic therapy (X-PDT). This new strategy still aims to produce a photodynamic effect with the use of nanoparticles, namely, AGuIX. Recently, we replaced Gd from the AGuIX@ platform with Terbium (Tb) as a nanoscintillator and added 5-(4-carboxyphenyl succinimide ester)-10,15,20-triphenylporphyrin (P1) as a photosensitizer (referred to as AGuIX@Tb-P1). Although Cerenkov luminescence from (68)Ga positrons is involved in nanoscintillator and photosensitizer activation, the cytotoxic effect obtained by PDT remains controversial. Herein, we tested whether free (68)Ga could substitute X-rays of X-PDT to obtain a cytotoxic phototherapeutic effect. Results were compared with those obtained with AGuIX@Gd-P1 nanoparticles. We showed, by Monte Carlo simulations, the contribution of Tb scintillation in P1 activation by an energy transfer between Tb and P1 after Cerenkov radiation, compared to the Gd-based nanoparticles. We confirmed the involvement of the type II PDT reaction during (68)Ga-mediated Cerenkov luminescence, id est, the transfer of photon to AGuIX@Tb-P1 which, in turn, generated P1-mediated singlet oxygen. The effect of (68)Ga on cell survival was studied by clonogenic assays using human glioblastoma U-251 MG cells. Exposure of pre-treated cells with AGuIX@Tb-P1 to (68)Ga resulted in the decrease in cell clone formation, unlike AGuIX@Gd-P1. We conclude that CR-PDT could be an alternative of X-PDT. MDPI 2023-01-18 /pmc/articles/PMC9963809/ /pubmed/37259295 http://dx.doi.org/10.3390/ph16020143 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Schneller, Perrine
Collet, Charlotte
Been, Quentin
Rocchi, Paul
Lux, François
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
Daouk, Joël
Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title_full Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title_fullStr Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title_full_unstemmed Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title_short Added Value of Scintillating Element in Cerenkov-Induced Photodynamic Therapy
title_sort added value of scintillating element in cerenkov-induced photodynamic therapy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9963809/
https://www.ncbi.nlm.nih.gov/pubmed/37259295
http://dx.doi.org/10.3390/ph16020143
work_keys_str_mv AT schnellerperrine addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT colletcharlotte addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT beenquentin addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT rocchipaul addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT luxfrancois addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT tillementolivier addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT barberiheyobmuriel addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT schohnherve addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy
AT daoukjoel addedvalueofscintillatingelementincerenkovinducedphotodynamictherapy