Cargando…

Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy

X-ray-induced photodynamic therapy is based on the energy transfer from a nanoscintillator to a photosensitizer molecule, whose activation leads to singlet oxygen and radical species generation, triggering cancer cells to cell death. Herein, we synthesized ultra-small nanoparticle chelated with Terb...

Descripción completa

Detalles Bibliográficos
Autores principales: Daouk, Joël, Iltis, Mathilde, Dhaini, Batoul, Béchet, Denise, Arnoux, Philippe, Rocchi, Paul, Delconte, Alain, Habermeyer, Benoît, Lux, François, Frochot, Céline, Tillement, Olivier, Barberi-Heyob, Muriel, Schohn, Hervé
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8143523/
https://www.ncbi.nlm.nih.gov/pubmed/33922073
http://dx.doi.org/10.3390/ph14050396
_version_ 1783696773903024128
author Daouk, Joël
Iltis, Mathilde
Dhaini, Batoul
Béchet, Denise
Arnoux, Philippe
Rocchi, Paul
Delconte, Alain
Habermeyer, Benoît
Lux, François
Frochot, Céline
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
author_facet Daouk, Joël
Iltis, Mathilde
Dhaini, Batoul
Béchet, Denise
Arnoux, Philippe
Rocchi, Paul
Delconte, Alain
Habermeyer, Benoît
Lux, François
Frochot, Céline
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
author_sort Daouk, Joël
collection PubMed
description X-ray-induced photodynamic therapy is based on the energy transfer from a nanoscintillator to a photosensitizer molecule, whose activation leads to singlet oxygen and radical species generation, triggering cancer cells to cell death. Herein, we synthesized ultra-small nanoparticle chelated with Terbium (Tb) as a nanoscintillator and 5-(4-carboxyphenyl succinimide ester)-10,15,20-triphenyl porphyrin (P1) as a photosensitizer (AGuIX@Tb-P1). The synthesis was based on the AGuIX@ platform design. AGuIX@Tb-P1 was characterised for its photo-physical and physico-chemical properties. The effect of the nanoparticles was studied using human glioblastoma U-251 MG cells and was compared to treatment with AGuIX@ nanoparticles doped with Gadolinium (Gd) and P1 (AGuIX@Gd-P1). We demonstrated that the AGuIX@Tb-P1 design was consistent with X-ray photon energy transfer from Terbium to P1. Both nanoparticles had similar dark cytotoxicity and they were absorbed in a similar rate within the cells. Pre-treated cells exposure to X-rays was related to reactive species production. Using clonogenic assays, establishment of survival curves allowed discrimination of the impact of radiation treatment from X-ray-induced photodynamic effect. We showed that cell growth arrest was increased (35%-increase) when cells were treated with AGuIX@Tb-P1 compared to the nanoparticle doped with Gd.
format Online
Article
Text
id pubmed-8143523
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-81435232021-05-25 Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy Daouk, Joël Iltis, Mathilde Dhaini, Batoul Béchet, Denise Arnoux, Philippe Rocchi, Paul Delconte, Alain Habermeyer, Benoît Lux, François Frochot, Céline Tillement, Olivier Barberi-Heyob, Muriel Schohn, Hervé Pharmaceuticals (Basel) Article X-ray-induced photodynamic therapy is based on the energy transfer from a nanoscintillator to a photosensitizer molecule, whose activation leads to singlet oxygen and radical species generation, triggering cancer cells to cell death. Herein, we synthesized ultra-small nanoparticle chelated with Terbium (Tb) as a nanoscintillator and 5-(4-carboxyphenyl succinimide ester)-10,15,20-triphenyl porphyrin (P1) as a photosensitizer (AGuIX@Tb-P1). The synthesis was based on the AGuIX@ platform design. AGuIX@Tb-P1 was characterised for its photo-physical and physico-chemical properties. The effect of the nanoparticles was studied using human glioblastoma U-251 MG cells and was compared to treatment with AGuIX@ nanoparticles doped with Gadolinium (Gd) and P1 (AGuIX@Gd-P1). We demonstrated that the AGuIX@Tb-P1 design was consistent with X-ray photon energy transfer from Terbium to P1. Both nanoparticles had similar dark cytotoxicity and they were absorbed in a similar rate within the cells. Pre-treated cells exposure to X-rays was related to reactive species production. Using clonogenic assays, establishment of survival curves allowed discrimination of the impact of radiation treatment from X-ray-induced photodynamic effect. We showed that cell growth arrest was increased (35%-increase) when cells were treated with AGuIX@Tb-P1 compared to the nanoparticle doped with Gd. MDPI 2021-04-22 /pmc/articles/PMC8143523/ /pubmed/33922073 http://dx.doi.org/10.3390/ph14050396 Text en © 2021 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
Daouk, Joël
Iltis, Mathilde
Dhaini, Batoul
Béchet, Denise
Arnoux, Philippe
Rocchi, Paul
Delconte, Alain
Habermeyer, Benoît
Lux, François
Frochot, Céline
Tillement, Olivier
Barberi-Heyob, Muriel
Schohn, Hervé
Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title_full Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title_fullStr Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title_full_unstemmed Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title_short Terbium-Based AGuIX-Design Nanoparticle to Mediate X-ray-Induced Photodynamic Therapy
title_sort terbium-based aguix-design nanoparticle to mediate x-ray-induced photodynamic therapy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8143523/
https://www.ncbi.nlm.nih.gov/pubmed/33922073
http://dx.doi.org/10.3390/ph14050396
work_keys_str_mv AT daoukjoel terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT iltismathilde terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT dhainibatoul terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT bechetdenise terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT arnouxphilippe terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT rocchipaul terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT delcontealain terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT habermeyerbenoit terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT luxfrancois terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT frochotceline terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT tillementolivier terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT barberiheyobmuriel terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy
AT schohnherve terbiumbasedaguixdesignnanoparticletomediatexrayinducedphotodynamictherapy