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Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe

Hypoxia-inducible genes may contribute to therapy resistance in glioblastoma (GBM), the most aggressive and hypoxic brain tumours. It has been recently reported that erythropoietin (EPO) and its receptor (EPOR) are involved in glioma growth. We now investigated whether EPOR signalling may modulate t...

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Autores principales: Pérès, Elodie A., Gérault, Aurélie N., Valable, Samuel, Roussel, Simon, Toutain, Jérôme, Divoux, Didier, Guillamo, Jean-Sébastien, Sanson, Marc, Bernaudin, Myriam, Petit, Edwige
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4385839/
https://www.ncbi.nlm.nih.gov/pubmed/25544764
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author Pérès, Elodie A.
Gérault, Aurélie N.
Valable, Samuel
Roussel, Simon
Toutain, Jérôme
Divoux, Didier
Guillamo, Jean-Sébastien
Sanson, Marc
Bernaudin, Myriam
Petit, Edwige
author_facet Pérès, Elodie A.
Gérault, Aurélie N.
Valable, Samuel
Roussel, Simon
Toutain, Jérôme
Divoux, Didier
Guillamo, Jean-Sébastien
Sanson, Marc
Bernaudin, Myriam
Petit, Edwige
author_sort Pérès, Elodie A.
collection PubMed
description Hypoxia-inducible genes may contribute to therapy resistance in glioblastoma (GBM), the most aggressive and hypoxic brain tumours. It has been recently reported that erythropoietin (EPO) and its receptor (EPOR) are involved in glioma growth. We now investigated whether EPOR signalling may modulate the efficacy of the GBM current treatment based on chemotherapy (temozolomide, TMZ) and radiotherapy (X-rays). Using RNA interference, we showed on glioma cell lines (U87 and U251) that EPOR silencing induces a G2/M cell cycle arrest, consistent with the slowdown of glioma growth induced by EPOR knock-down. In vivo, we also reported that EPOR silencing combined with TMZ treatment is more efficient to delay tumour recurrence and to prolong animal survival compared to TMZ alone. In vitro, we showed that EPOR silencing not only increases the sensitivity of glioma cells to TMZ as well as X-rays but also counteracts the hypoxia-induced chemo- and radioresistance. Silencing EPOR on glioma cells exposed to conventional treatments enhances senescence and induces a robust genomic instability that leads to caspase-dependent mitotic death by increasing the number of polyploid cells and cyclin B1 expression. Overall these data suggest that EPOR could be an attractive target to overcome therapeutic resistance toward ionising radiation or temozolomide.
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spelling pubmed-43858392015-04-14 Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe Pérès, Elodie A. Gérault, Aurélie N. Valable, Samuel Roussel, Simon Toutain, Jérôme Divoux, Didier Guillamo, Jean-Sébastien Sanson, Marc Bernaudin, Myriam Petit, Edwige Oncotarget Research Paper Hypoxia-inducible genes may contribute to therapy resistance in glioblastoma (GBM), the most aggressive and hypoxic brain tumours. It has been recently reported that erythropoietin (EPO) and its receptor (EPOR) are involved in glioma growth. We now investigated whether EPOR signalling may modulate the efficacy of the GBM current treatment based on chemotherapy (temozolomide, TMZ) and radiotherapy (X-rays). Using RNA interference, we showed on glioma cell lines (U87 and U251) that EPOR silencing induces a G2/M cell cycle arrest, consistent with the slowdown of glioma growth induced by EPOR knock-down. In vivo, we also reported that EPOR silencing combined with TMZ treatment is more efficient to delay tumour recurrence and to prolong animal survival compared to TMZ alone. In vitro, we showed that EPOR silencing not only increases the sensitivity of glioma cells to TMZ as well as X-rays but also counteracts the hypoxia-induced chemo- and radioresistance. Silencing EPOR on glioma cells exposed to conventional treatments enhances senescence and induces a robust genomic instability that leads to caspase-dependent mitotic death by increasing the number of polyploid cells and cyclin B1 expression. Overall these data suggest that EPOR could be an attractive target to overcome therapeutic resistance toward ionising radiation or temozolomide. Impact Journals LLC 2014-12-03 /pmc/articles/PMC4385839/ /pubmed/25544764 Text en Copyright: © 2015 Pérès et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Pérès, Elodie A.
Gérault, Aurélie N.
Valable, Samuel
Roussel, Simon
Toutain, Jérôme
Divoux, Didier
Guillamo, Jean-Sébastien
Sanson, Marc
Bernaudin, Myriam
Petit, Edwige
Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title_full Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title_fullStr Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title_full_unstemmed Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title_short Silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and X-rays through senescence and mitotic catastrophe
title_sort silencing erythropoietin receptor on glioma cells reinforces efficacy of temozolomide and x-rays through senescence and mitotic catastrophe
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4385839/
https://www.ncbi.nlm.nih.gov/pubmed/25544764
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