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Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes

Tumor hypoxia is known to limit the efficacy of ionizing radiations, a concept called oxygen enhancement ratio (OER). OER depends on physical factors such as pO(2) and linear energy transfer (LET). Biological pathways, such as the hypoxia-inducible transcription factors (HIF), might also modulate th...

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Autores principales: Valable, Samuel, Gérault, Aurélie N., Lambert, Gaëlle, Leblond, Marine M., Anfray, Clément, Toutain, Jérôme, Bordji, Karim, Petit, Edwige, Bernaudin, Myriam, Pérès, Elodie A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464439/
https://www.ncbi.nlm.nih.gov/pubmed/32718037
http://dx.doi.org/10.3390/cancers12082019
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author Valable, Samuel
Gérault, Aurélie N.
Lambert, Gaëlle
Leblond, Marine M.
Anfray, Clément
Toutain, Jérôme
Bordji, Karim
Petit, Edwige
Bernaudin, Myriam
Pérès, Elodie A.
author_facet Valable, Samuel
Gérault, Aurélie N.
Lambert, Gaëlle
Leblond, Marine M.
Anfray, Clément
Toutain, Jérôme
Bordji, Karim
Petit, Edwige
Bernaudin, Myriam
Pérès, Elodie A.
author_sort Valable, Samuel
collection PubMed
description Tumor hypoxia is known to limit the efficacy of ionizing radiations, a concept called oxygen enhancement ratio (OER). OER depends on physical factors such as pO(2) and linear energy transfer (LET). Biological pathways, such as the hypoxia-inducible transcription factors (HIF), might also modulate the influence of LET on OER. Glioblastoma (GB) is resistant to low-LET radiation (X-rays), due in part to the hypoxic environment in this brain tumor. Here, we aim to evaluate in vitro whether high-LET particles, especially carbon ion radiotherapy (CIRT), can overcome the contribution of hypoxia to radioresistance, and whether HIF-dependent genes, such as erythropoietin (EPO), influence GB sensitivity to CIRT. Hypoxia-induced radioresistance was studied in two human GB cells (U251, GL15) exposed to X-rays or to carbon ion beams with various LET (28, 50, 100 keV/µm), and in genetically-modified GB cells with downregulated EPO signaling. Cell survival, radiobiological parameters, cell cycle, and ERK activation were assessed under those conditions. The results demonstrate that, although CIRT is more efficient than X-rays in GB cells, hypoxia can limit CIRT efficacy in a cell-type manner that may involve differences in ERK activation. Using high-LET carbon beams, or targeting hypoxia-dependent genes such as EPO might reduce the effects of hypoxia.
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spelling pubmed-74644392020-09-04 Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes Valable, Samuel Gérault, Aurélie N. Lambert, Gaëlle Leblond, Marine M. Anfray, Clément Toutain, Jérôme Bordji, Karim Petit, Edwige Bernaudin, Myriam Pérès, Elodie A. Cancers (Basel) Article Tumor hypoxia is known to limit the efficacy of ionizing radiations, a concept called oxygen enhancement ratio (OER). OER depends on physical factors such as pO(2) and linear energy transfer (LET). Biological pathways, such as the hypoxia-inducible transcription factors (HIF), might also modulate the influence of LET on OER. Glioblastoma (GB) is resistant to low-LET radiation (X-rays), due in part to the hypoxic environment in this brain tumor. Here, we aim to evaluate in vitro whether high-LET particles, especially carbon ion radiotherapy (CIRT), can overcome the contribution of hypoxia to radioresistance, and whether HIF-dependent genes, such as erythropoietin (EPO), influence GB sensitivity to CIRT. Hypoxia-induced radioresistance was studied in two human GB cells (U251, GL15) exposed to X-rays or to carbon ion beams with various LET (28, 50, 100 keV/µm), and in genetically-modified GB cells with downregulated EPO signaling. Cell survival, radiobiological parameters, cell cycle, and ERK activation were assessed under those conditions. The results demonstrate that, although CIRT is more efficient than X-rays in GB cells, hypoxia can limit CIRT efficacy in a cell-type manner that may involve differences in ERK activation. Using high-LET carbon beams, or targeting hypoxia-dependent genes such as EPO might reduce the effects of hypoxia. MDPI 2020-07-23 /pmc/articles/PMC7464439/ /pubmed/32718037 http://dx.doi.org/10.3390/cancers12082019 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Valable, Samuel
Gérault, Aurélie N.
Lambert, Gaëlle
Leblond, Marine M.
Anfray, Clément
Toutain, Jérôme
Bordji, Karim
Petit, Edwige
Bernaudin, Myriam
Pérès, Elodie A.
Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title_full Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title_fullStr Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title_full_unstemmed Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title_short Impact of Hypoxia on Carbon Ion Therapy in Glioblastoma Cells: Modulation by LET and Hypoxia-Dependent Genes
title_sort impact of hypoxia on carbon ion therapy in glioblastoma cells: modulation by let and hypoxia-dependent genes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464439/
https://www.ncbi.nlm.nih.gov/pubmed/32718037
http://dx.doi.org/10.3390/cancers12082019
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