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Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death

Background: The epidermal growth factor receptor (EGFR) signaling pathway is genetically activated in approximately 50% of glioblastomas (GBs). Its inhibition has been explored clinically but produced disappointing results, potentially due to metabolic effects that protect GB cells against nutrient...

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Autores principales: Luger, Anna-Luisa, Lorenz, Nadja I., Urban, Hans, Divé, Iris, Engel, Anna L., Strassheimer, Florian, Dettmer, Katja, Zeiner, Pia S., Shaid, Shabnam, Struve, Nina, Kriegs, Malte, Hofmann, Ute, Oefner, Peter J., Harter, Patrick N., Steinbach, Joachim P., Ronellenfitsch, Michael W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464192/
https://www.ncbi.nlm.nih.gov/pubmed/32756332
http://dx.doi.org/10.3390/cancers12082144
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author Luger, Anna-Luisa
Lorenz, Nadja I.
Urban, Hans
Divé, Iris
Engel, Anna L.
Strassheimer, Florian
Dettmer, Katja
Zeiner, Pia S.
Shaid, Shabnam
Struve, Nina
Kriegs, Malte
Hofmann, Ute
Oefner, Peter J.
Harter, Patrick N.
Steinbach, Joachim P.
Ronellenfitsch, Michael W.
author_facet Luger, Anna-Luisa
Lorenz, Nadja I.
Urban, Hans
Divé, Iris
Engel, Anna L.
Strassheimer, Florian
Dettmer, Katja
Zeiner, Pia S.
Shaid, Shabnam
Struve, Nina
Kriegs, Malte
Hofmann, Ute
Oefner, Peter J.
Harter, Patrick N.
Steinbach, Joachim P.
Ronellenfitsch, Michael W.
author_sort Luger, Anna-Luisa
collection PubMed
description Background: The epidermal growth factor receptor (EGFR) signaling pathway is genetically activated in approximately 50% of glioblastomas (GBs). Its inhibition has been explored clinically but produced disappointing results, potentially due to metabolic effects that protect GB cells against nutrient deprivation and hypoxia. Here, we hypothesized that EGFR activation could disable metabolic adaptation and define a GB cell population sensitive to starvation. Methods: Using genetically engineered GB cells to model different types of EGFR activation, we analyzed changes in metabolism and cell survival under conditions of the tumor microenvironment. Results: We found that expression of mutant EGFRvIII as well as EGF stimulation of EGFR-overexpressing cells impaired physiological adaptation to starvation and rendered cells sensitive to hypoxia-induced cell death. This was preceded by adenosine triphosphate (ATP) depletion and an increase in glycolysis. Furthermore, EGFRvIII mutant cells had higher levels of mitochondrial superoxides potentially due to decreased metabolic flux into the serine synthesis pathway which was associated with a decrease in the NADPH/NADP+ ratio. Conclusions: The finding that EGFR activation renders GB cells susceptible to starvation could help to identify a subgroup of patients more likely to benefit from starvation-inducing therapies.
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spelling pubmed-74641922020-09-04 Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death Luger, Anna-Luisa Lorenz, Nadja I. Urban, Hans Divé, Iris Engel, Anna L. Strassheimer, Florian Dettmer, Katja Zeiner, Pia S. Shaid, Shabnam Struve, Nina Kriegs, Malte Hofmann, Ute Oefner, Peter J. Harter, Patrick N. Steinbach, Joachim P. Ronellenfitsch, Michael W. Cancers (Basel) Article Background: The epidermal growth factor receptor (EGFR) signaling pathway is genetically activated in approximately 50% of glioblastomas (GBs). Its inhibition has been explored clinically but produced disappointing results, potentially due to metabolic effects that protect GB cells against nutrient deprivation and hypoxia. Here, we hypothesized that EGFR activation could disable metabolic adaptation and define a GB cell population sensitive to starvation. Methods: Using genetically engineered GB cells to model different types of EGFR activation, we analyzed changes in metabolism and cell survival under conditions of the tumor microenvironment. Results: We found that expression of mutant EGFRvIII as well as EGF stimulation of EGFR-overexpressing cells impaired physiological adaptation to starvation and rendered cells sensitive to hypoxia-induced cell death. This was preceded by adenosine triphosphate (ATP) depletion and an increase in glycolysis. Furthermore, EGFRvIII mutant cells had higher levels of mitochondrial superoxides potentially due to decreased metabolic flux into the serine synthesis pathway which was associated with a decrease in the NADPH/NADP+ ratio. Conclusions: The finding that EGFR activation renders GB cells susceptible to starvation could help to identify a subgroup of patients more likely to benefit from starvation-inducing therapies. MDPI 2020-08-03 /pmc/articles/PMC7464192/ /pubmed/32756332 http://dx.doi.org/10.3390/cancers12082144 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
Luger, Anna-Luisa
Lorenz, Nadja I.
Urban, Hans
Divé, Iris
Engel, Anna L.
Strassheimer, Florian
Dettmer, Katja
Zeiner, Pia S.
Shaid, Shabnam
Struve, Nina
Kriegs, Malte
Hofmann, Ute
Oefner, Peter J.
Harter, Patrick N.
Steinbach, Joachim P.
Ronellenfitsch, Michael W.
Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title_full Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title_fullStr Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title_full_unstemmed Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title_short Activation of Epidermal Growth Factor Receptor Sensitizes Glioblastoma Cells to Hypoxia-Induced Cell Death
title_sort activation of epidermal growth factor receptor sensitizes glioblastoma cells to hypoxia-induced cell death
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7464192/
https://www.ncbi.nlm.nih.gov/pubmed/32756332
http://dx.doi.org/10.3390/cancers12082144
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