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Improving proton therapy by metal-containing nanoparticles: nanoscale insights

The use of nanoparticles to enhance the effect of radiation-based cancer treatments is a growing field of study and recently, even nanoparticle-induced improvement of proton therapy performance has been investigated. Aiming at a clinical implementation of this approach, it is essential to characteri...

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Autores principales: Schlathölter, Thomas, Eustache, Pierre, Porcel, Erika, Salado, Daniela, Stefancikova, Lenka, Tillement, Olivier, Lux, Francois, Mowat, Pierre, Biegun, Aleksandra K, van Goethem, Marc-Jan, Remita, Hynd, Lacombe, Sandrine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4841428/
https://www.ncbi.nlm.nih.gov/pubmed/27143877
http://dx.doi.org/10.2147/IJN.S99410
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author Schlathölter, Thomas
Eustache, Pierre
Porcel, Erika
Salado, Daniela
Stefancikova, Lenka
Tillement, Olivier
Lux, Francois
Mowat, Pierre
Biegun, Aleksandra K
van Goethem, Marc-Jan
Remita, Hynd
Lacombe, Sandrine
author_facet Schlathölter, Thomas
Eustache, Pierre
Porcel, Erika
Salado, Daniela
Stefancikova, Lenka
Tillement, Olivier
Lux, Francois
Mowat, Pierre
Biegun, Aleksandra K
van Goethem, Marc-Jan
Remita, Hynd
Lacombe, Sandrine
author_sort Schlathölter, Thomas
collection PubMed
description The use of nanoparticles to enhance the effect of radiation-based cancer treatments is a growing field of study and recently, even nanoparticle-induced improvement of proton therapy performance has been investigated. Aiming at a clinical implementation of this approach, it is essential to characterize the mechanisms underlying the synergistic effects of nanoparticles combined with proton irradiation. In this study, we investigated the effect of platinum- and gadolinium-based nanoparticles on the nanoscale damage induced by a proton beam of therapeutically relevant energy (150 MeV) using plasmid DNA molecular probe. Two conditions of irradiation (0.44 and 3.6 keV/μm) were considered to mimic the beam properties at the entrance and at the end of the proton track. We demonstrate that the two metal-containing nanoparticles amplify, in particular, the induction of nanosize damages (>2 nm) which are most lethal for cells. More importantly, this effect is even more pronounced at the end of the proton track. This work gives a new insight into the underlying mechanisms on the nanoscale and indicates that the addition of metal-based nanoparticles is a promising strategy not only to increase the cell killing action of fast protons, but also to improve tumor targeting.
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spelling pubmed-48414282016-05-03 Improving proton therapy by metal-containing nanoparticles: nanoscale insights Schlathölter, Thomas Eustache, Pierre Porcel, Erika Salado, Daniela Stefancikova, Lenka Tillement, Olivier Lux, Francois Mowat, Pierre Biegun, Aleksandra K van Goethem, Marc-Jan Remita, Hynd Lacombe, Sandrine Int J Nanomedicine Original Research The use of nanoparticles to enhance the effect of radiation-based cancer treatments is a growing field of study and recently, even nanoparticle-induced improvement of proton therapy performance has been investigated. Aiming at a clinical implementation of this approach, it is essential to characterize the mechanisms underlying the synergistic effects of nanoparticles combined with proton irradiation. In this study, we investigated the effect of platinum- and gadolinium-based nanoparticles on the nanoscale damage induced by a proton beam of therapeutically relevant energy (150 MeV) using plasmid DNA molecular probe. Two conditions of irradiation (0.44 and 3.6 keV/μm) were considered to mimic the beam properties at the entrance and at the end of the proton track. We demonstrate that the two metal-containing nanoparticles amplify, in particular, the induction of nanosize damages (>2 nm) which are most lethal for cells. More importantly, this effect is even more pronounced at the end of the proton track. This work gives a new insight into the underlying mechanisms on the nanoscale and indicates that the addition of metal-based nanoparticles is a promising strategy not only to increase the cell killing action of fast protons, but also to improve tumor targeting. Dove Medical Press 2016-04-15 /pmc/articles/PMC4841428/ /pubmed/27143877 http://dx.doi.org/10.2147/IJN.S99410 Text en © 2016 Schlathölter et al. This work is published and licensed by Dove Medical Press Limited The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Schlathölter, Thomas
Eustache, Pierre
Porcel, Erika
Salado, Daniela
Stefancikova, Lenka
Tillement, Olivier
Lux, Francois
Mowat, Pierre
Biegun, Aleksandra K
van Goethem, Marc-Jan
Remita, Hynd
Lacombe, Sandrine
Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title_full Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title_fullStr Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title_full_unstemmed Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title_short Improving proton therapy by metal-containing nanoparticles: nanoscale insights
title_sort improving proton therapy by metal-containing nanoparticles: nanoscale insights
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4841428/
https://www.ncbi.nlm.nih.gov/pubmed/27143877
http://dx.doi.org/10.2147/IJN.S99410
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