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BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells

Infiltration of the brain by glioblastoma cells reportedly requires Ca(2+) signals and BK K(+) channels that program and drive glioblastoma cell migration, respectively. Ionizing radiation (IR) has been shown to induce expression of the chemokine SDF-1, to alter the Ca(2+) signaling, and to stimulat...

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Autores principales: Edalat, Lena, Stegen, Benjamin, Klumpp, Lukas, Haehl, Erik, Schilbach, Karin, Lukowski, Robert, Kühnle, Matthias, Bernhardt, Günther, Buschauer, Armin, Zips, Daniel, Ruth, Peter, Huber, Stephan M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4924713/
https://www.ncbi.nlm.nih.gov/pubmed/26893360
http://dx.doi.org/10.18632/oncotarget.7423
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author Edalat, Lena
Stegen, Benjamin
Klumpp, Lukas
Haehl, Erik
Schilbach, Karin
Lukowski, Robert
Kühnle, Matthias
Bernhardt, Günther
Buschauer, Armin
Zips, Daniel
Ruth, Peter
Huber, Stephan M.
author_facet Edalat, Lena
Stegen, Benjamin
Klumpp, Lukas
Haehl, Erik
Schilbach, Karin
Lukowski, Robert
Kühnle, Matthias
Bernhardt, Günther
Buschauer, Armin
Zips, Daniel
Ruth, Peter
Huber, Stephan M.
author_sort Edalat, Lena
collection PubMed
description Infiltration of the brain by glioblastoma cells reportedly requires Ca(2+) signals and BK K(+) channels that program and drive glioblastoma cell migration, respectively. Ionizing radiation (IR) has been shown to induce expression of the chemokine SDF-1, to alter the Ca(2+) signaling, and to stimulate cell migration of glioblastoma cells. Here, we quantified fractionated IR-induced migration/brain infiltration of human glioblastoma cells in vitro and in an orthotopic mouse model and analyzed the role of SDF-1/CXCR4 signaling and BK channels. To this end, the radiation-induced migratory phenotypes of human T98G and far-red fluorescent U-87MG-Katushka glioblastoma cells were characterized by mRNA and protein expression, fura-2 Ca(2+) imaging, BK patch-clamp recording and transfilter migration assay. In addition, U-87MG-Katushka cells were grown to solid glioblastomas in the right hemispheres of immunocompromised mice, fractionated irradiated (6 MV photons) with 5 × 0 or 5 × 2 Gy, and SDF-1, CXCR4, and BK protein expression by the tumor as well as glioblastoma brain infiltration was analyzed in dependence on BK channel targeting by systemic paxilline application concomitant to IR. As a result, IR stimulated SDF-1 signaling and induced migration of glioblastoma cells in vitro and in vivo. Importantly, paxilline blocked IR-induced migration in vivo. Collectively, our data demonstrate that fractionated IR of glioblastoma stimulates and BK K(+) channel targeting mitigates migration and brain infiltration of glioblastoma cells in vivo. This suggests that BK channel targeting might represent a novel approach to overcome radiation-induced spreading of malignant brain tumors during radiotherapy.
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spelling pubmed-49247132016-07-13 BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells Edalat, Lena Stegen, Benjamin Klumpp, Lukas Haehl, Erik Schilbach, Karin Lukowski, Robert Kühnle, Matthias Bernhardt, Günther Buschauer, Armin Zips, Daniel Ruth, Peter Huber, Stephan M. Oncotarget Research Paper Infiltration of the brain by glioblastoma cells reportedly requires Ca(2+) signals and BK K(+) channels that program and drive glioblastoma cell migration, respectively. Ionizing radiation (IR) has been shown to induce expression of the chemokine SDF-1, to alter the Ca(2+) signaling, and to stimulate cell migration of glioblastoma cells. Here, we quantified fractionated IR-induced migration/brain infiltration of human glioblastoma cells in vitro and in an orthotopic mouse model and analyzed the role of SDF-1/CXCR4 signaling and BK channels. To this end, the radiation-induced migratory phenotypes of human T98G and far-red fluorescent U-87MG-Katushka glioblastoma cells were characterized by mRNA and protein expression, fura-2 Ca(2+) imaging, BK patch-clamp recording and transfilter migration assay. In addition, U-87MG-Katushka cells were grown to solid glioblastomas in the right hemispheres of immunocompromised mice, fractionated irradiated (6 MV photons) with 5 × 0 or 5 × 2 Gy, and SDF-1, CXCR4, and BK protein expression by the tumor as well as glioblastoma brain infiltration was analyzed in dependence on BK channel targeting by systemic paxilline application concomitant to IR. As a result, IR stimulated SDF-1 signaling and induced migration of glioblastoma cells in vitro and in vivo. Importantly, paxilline blocked IR-induced migration in vivo. Collectively, our data demonstrate that fractionated IR of glioblastoma stimulates and BK K(+) channel targeting mitigates migration and brain infiltration of glioblastoma cells in vivo. This suggests that BK channel targeting might represent a novel approach to overcome radiation-induced spreading of malignant brain tumors during radiotherapy. Impact Journals LLC 2016-02-16 /pmc/articles/PMC4924713/ /pubmed/26893360 http://dx.doi.org/10.18632/oncotarget.7423 Text en Copyright: © 2016 Edalat 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
Edalat, Lena
Stegen, Benjamin
Klumpp, Lukas
Haehl, Erik
Schilbach, Karin
Lukowski, Robert
Kühnle, Matthias
Bernhardt, Günther
Buschauer, Armin
Zips, Daniel
Ruth, Peter
Huber, Stephan M.
BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title_full BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title_fullStr BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title_full_unstemmed BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title_short BK K(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
title_sort bk k(+) channel blockade inhibits radiation-induced migration/brain infiltration of glioblastoma cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4924713/
https://www.ncbi.nlm.nih.gov/pubmed/26893360
http://dx.doi.org/10.18632/oncotarget.7423
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