FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.

Glioblastoma (GBM) is the most aggressive and most lethal brain tumor. As current standard therapy consisting of surgery and chemo-irradiation provides limited benefit for GBM patients, novel therapeutic options are urgently required. Forkhead box M1 (FoxM1) transcription factor is an oncogenic regu...

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Main Authors: Yeri Lee, Kang Ho Kim, Dong Geon Kim, Hee Jin Cho, Yeonghwan Kim, Jinguen Rheey, Kayoung Shin, Yun Jee Seo, Yeon-Sook Choi, Jung-Il Lee, Jeongwu Lee, Kyeung Min Joo, Do-Hyun Nam
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4596841?pdf=render
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spelling doaj-bf32ec9cfbbb4ceab8cf481937a7900f2020-11-25T01:49:04ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-011010e013770310.1371/journal.pone.0137703FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.Yeri LeeKang Ho KimDong Geon KimHee Jin ChoYeonghwan KimJinguen RheeyKayoung ShinYun Jee SeoYeon-Sook ChoiJung-Il LeeJeongwu LeeKyeung Min JooDo-Hyun NamGlioblastoma (GBM) is the most aggressive and most lethal brain tumor. As current standard therapy consisting of surgery and chemo-irradiation provides limited benefit for GBM patients, novel therapeutic options are urgently required. Forkhead box M1 (FoxM1) transcription factor is an oncogenic regulator that promotes the proliferation, survival, and treatment resistance of various human cancers. The roles of FoxM1 in GBM remain incompletely understood, due in part to pleotropic nature of the FoxM1 pathway. Here, we show the roles of FoxM1 in GBM stem cell maintenance and radioresistance. ShRNA-mediated FoxM1 inhibition significantly impeded clonogenic growth and survival of patient-derived primary GBM cells with marked downregulation of Sox2, a master regulator of stem cell phenotype. Ectopic expression of Sox2 partially rescued FoxM1 inhibition-mediated effects. Conversely, FoxM1 overexpression upregulated Sox2 expression and promoted clonogenic growth of GBM cells. These data, with a direct binding of FoxM1 in the Sox2 promoter region in GBM cells, suggest that FoxM1 regulates stemness of primary GBM cells via Sox2. We also found significant increases in FoxM1 and Sox2 expression in GBM cells after irradiation both in vitro and in vivo orthotopic tumor models. Notably, genetic or a small-molecule FoxM1 inhibitor-mediated FoxM1 targeting significantly sensitized GBM cells to irradiation, accompanying with Sox2 downregulation. Finally, FoxM1 inhibition combined with irradiation in a patient GBM-derived orthotopic model significantly impeded tumor growth and prolonged the survival of tumor bearing mice. Taken together, these results indicate that the FoxM1-Sox2 signaling axis promotes clonogenic growth and radiation resistance of GBM, and suggest that FoxM1 targeting combined with irradiation is a potentially effective therapeutic approach for GBM.http://europepmc.org/articles/PMC4596841?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Yeri Lee
Kang Ho Kim
Dong Geon Kim
Hee Jin Cho
Yeonghwan Kim
Jinguen Rheey
Kayoung Shin
Yun Jee Seo
Yeon-Sook Choi
Jung-Il Lee
Jeongwu Lee
Kyeung Min Joo
Do-Hyun Nam
spellingShingle Yeri Lee
Kang Ho Kim
Dong Geon Kim
Hee Jin Cho
Yeonghwan Kim
Jinguen Rheey
Kayoung Shin
Yun Jee Seo
Yeon-Sook Choi
Jung-Il Lee
Jeongwu Lee
Kyeung Min Joo
Do-Hyun Nam
FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
PLoS ONE
author_facet Yeri Lee
Kang Ho Kim
Dong Geon Kim
Hee Jin Cho
Yeonghwan Kim
Jinguen Rheey
Kayoung Shin
Yun Jee Seo
Yeon-Sook Choi
Jung-Il Lee
Jeongwu Lee
Kyeung Min Joo
Do-Hyun Nam
author_sort Yeri Lee
title FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
title_short FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
title_full FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
title_fullStr FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
title_full_unstemmed FoxM1 Promotes Stemness and Radio-Resistance of Glioblastoma by Regulating the Master Stem Cell Regulator Sox2.
title_sort foxm1 promotes stemness and radio-resistance of glioblastoma by regulating the master stem cell regulator sox2.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Glioblastoma (GBM) is the most aggressive and most lethal brain tumor. As current standard therapy consisting of surgery and chemo-irradiation provides limited benefit for GBM patients, novel therapeutic options are urgently required. Forkhead box M1 (FoxM1) transcription factor is an oncogenic regulator that promotes the proliferation, survival, and treatment resistance of various human cancers. The roles of FoxM1 in GBM remain incompletely understood, due in part to pleotropic nature of the FoxM1 pathway. Here, we show the roles of FoxM1 in GBM stem cell maintenance and radioresistance. ShRNA-mediated FoxM1 inhibition significantly impeded clonogenic growth and survival of patient-derived primary GBM cells with marked downregulation of Sox2, a master regulator of stem cell phenotype. Ectopic expression of Sox2 partially rescued FoxM1 inhibition-mediated effects. Conversely, FoxM1 overexpression upregulated Sox2 expression and promoted clonogenic growth of GBM cells. These data, with a direct binding of FoxM1 in the Sox2 promoter region in GBM cells, suggest that FoxM1 regulates stemness of primary GBM cells via Sox2. We also found significant increases in FoxM1 and Sox2 expression in GBM cells after irradiation both in vitro and in vivo orthotopic tumor models. Notably, genetic or a small-molecule FoxM1 inhibitor-mediated FoxM1 targeting significantly sensitized GBM cells to irradiation, accompanying with Sox2 downregulation. Finally, FoxM1 inhibition combined with irradiation in a patient GBM-derived orthotopic model significantly impeded tumor growth and prolonged the survival of tumor bearing mice. Taken together, these results indicate that the FoxM1-Sox2 signaling axis promotes clonogenic growth and radiation resistance of GBM, and suggest that FoxM1 targeting combined with irradiation is a potentially effective therapeutic approach for GBM.
url http://europepmc.org/articles/PMC4596841?pdf=render
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