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PMID: 26444992 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

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

PloS one ·Vol. 10 ·No. 10 ·2015-00-00 ·Pages e0137703

Lee Y, Kim KH, Kim DG, Cho HJ, Kim Y, Rheey J, Shin K, Seo YJ, Choi YS, Lee JI, Lee J, Joo KM, Nam DH

Abstract

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.

MeSH Terms
Animals Brain Neoplasms/mortality,pathology,therapy Drug Resistance, Neoplasm/genetics Forkhead Box Protein M1 Forkhead Transcription Factors/antagonists & inhibitors,genetics Gene Expression Regulation, Neoplastic Glioblastoma/mortality,pathology,therapy Heterografts Humans Mice Mice, Inbred BALB C Neoplasm Transplantation Neoplastic Stem Cells/cytology Promoter Regions, Genetic/genetics RNA Interference RNA, Small Interfering Radiation Tolerance/genetics SOXB1 Transcription Factors/biosynthesis,genetics Signal Transduction/genetics
Chemicals
Forkhead Box Protein M1 Forkhead Transcription Factors Foxm1 protein, mouse RNA, Small Interfering SOXB1 Transcription Factors Sox2 protein, mouse
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Lee Yeri
Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul, South Korea.
Kim Kang Ho
Samsung Biomedical Research Institute, Samsung Medical Center, Seoul, South Korea.
Kim Dong Geon
Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul, South Korea.
Cho Hee Jin
Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul, South Korea.
Kim Yeonghwan
Department of Stem Cell Biology and Regenerative Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, United States of America.
Rheey Jinguen
Samsung Biomedical Research Institute, Samsung Medical Center, Seoul, South Korea.
Shin Kayoung
Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul, South Korea.
Seo Yun Jee
Department of Neurosurgery, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, South Korea.
Choi Yeon-Sook
Department of Neurosurgery, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, South Korea.
Lee Jung-Il
Department of Neurosurgery, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, South Korea.
Lee Jeongwu
Department of Stem Cell Biology and Regenerative Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, United States of America.
Joo Kyeung Min
Samsung Biomedical Research Institute, Samsung Medical Center, Seoul, South Korea; Department of Anatomy and cell biology, Sungkyunkwan University School of Medicine, Suwon, South Korea.
Nam Do-Hyun
Department of Health Sciences and Technology, SAIHST, Sungkyunkwan University, Seoul, South Korea; Department of Neurosurgery, Samsung Medical Center, Sungkyunkwan University School of Medicine, Seoul, South Korea.
References (43)
43 references, click to expand
  1. [Recommendation for uniform definition of an immunoreactive score (IRS) for immunohistochemical estrogen receptor detection (ER-ICA) in breast cancer tissue].
    Pathologe. 1987 May;8(3):138-40 PMID: 3303008
  2. OPN induces FoxM1 expression and localization through ERK 1/2, AKT, and p38 signaling pathway in HEC-1A cells.
    Int J Mol Sci. 2014;15(12):23345-58 PMID: 25522167
  3. Radiotherapy plus concomitant and adjuvant temozolomide for glioblastoma.
    N Engl J Med. 2005 Mar 10;352(10):987-96 PMID: 15758009
  4. FoxM1B is overexpressed in human glioblastomas and critically regulates the tumorigenicity of glioma cells.
    Cancer Res. 2006 Apr 1;66(7):3593-602 PMID: 16585184
  5. Tumor stem cells derived from glioblastomas cultured in bFGF and EGF more closely mirror the phenotype and genotype of primary tumors than do serum-cultured cell lines.
    Cancer Cell. 2006 May;9(5):391-403 PMID: 16697959
  6. Glioma stem cells promote radioresistance by preferential activation of the DNA damage response.
    Nature. 2006 Dec 7;444(7120):756-60 PMID: 17051156
  7. Wnt signalling and its impact on development and cancer.
    Nat Rev Cancer. 2008 May;8(5):387-98 PMID: 18432252
  8. Regulation of self-renewal and pluripotency by Sox2 in human embryonic stem cells.
    Stem Cells. 2008 Aug;26(8):1931-8 PMID: 18388306
  9. FoxM1B transcriptionally regulates vascular endothelial growth factor expression and promotes the angiogenesis and growth of glioma cells.
    Cancer Res. 2008 Nov 1;68(21):8733-42 PMID: 18974115
  10. SSEA-1 is an enrichment marker for tumor-initiating cells in human glioblastoma.
    Cell Stem Cell. 2009 May 8;4(5):440-52 PMID: 19427293
  11. FOXM1 confers acquired cisplatin resistance in breast cancer cells.
    Mol Cancer Res. 2010 Jan;8(1):24-34 PMID: 20068070
  12. FoxM1 mediates resistance to herceptin and paclitaxel.
    Cancer Res. 2010 Jun 15;70(12):5054-63 PMID: 20530690
  13. The transcription factor Sox2 is required for osteoblast self-renewal.
    Cell Death Differ. 2010 Aug;17(8):1345-53 PMID: 20489730
  14. The FOXM1 transcriptional factor promotes the proliferation of leukemia cells through modulation of cell cycle progression in acute myeloid leukemia.
    Carcinogenesis. 2010 Nov;31(11):2012-21 PMID: 20823107
  15. Expression and significance of FOXM1 in human cervical cancer: a tissue micro-array study.
    Clin Invest Med. 2011;34(1):E1-7 PMID: 21291630
  16. ATM and p53 regulate FOXM1 expression via E2F in breast cancer epirubicin treatment and resistance.
    Mol Cancer Ther. 2011 Jun;10(6):1046-58 PMID: 21518729
  17. FoxM1 in tumorigenicity of the neuroblastoma cells and renewal of the neural progenitors.
    Cancer Res. 2011 Jun 15;71(12):4292-302 PMID: 21507930
  18. Over-expression of FoxM1 leads to epithelial-mesenchymal transition and cancer stem cell phenotype in pancreatic cancer cells.
    J Cell Biochem. 2011 Sep;112(9):2296-306 PMID: 21503965
  19. FoxM1 promotes β-catenin nuclear localization and controls Wnt target-gene expression and glioma tumorigenesis.
    Cancer Cell. 2011 Oct 18;20(4):427-42 PMID: 22014570
  20. Genetic and epigenetic modifications of Sox2 contribute to the invasive phenotype of malignant gliomas.
    PLoS One. 2011;6(11):e26740 PMID: 22069467
  21. Suppression of FOXM1 sensitizes human cancer cells to cell death induced by DNA-damage.
    PLoS One. 2012;7(2):e31761 PMID: 22393369
  22. Sox2 maintains self renewal of tumor-initiating cells in osteosarcomas.
    Oncogene. 2012 May 3;31(18):2270-82 PMID: 21927024
  23. FoxM1 mediated resistance to gefitinib in non-small-cell lung cancer cells.
    Acta Pharmacol Sin. 2012 May;33(5):675-81 PMID: 22447226
  24. FoxM1 is vital in the Wnt/β-catenin signaling pathogenesis of gliomas.
    World Neurosurg. 2012 May-Jun;77(5-6):594-6 PMID: 22430325
  25. MET signaling regulates glioblastoma stem cells.
    Cancer Res. 2012 Aug 1;72(15):3828-38 PMID: 22617325
  26. A restricted cell population propagates glioblastoma growth after chemotherapy.
    Nature. 2012 Aug 23;488(7412):522-6 PMID: 22854781
  27. FoxM1 inhibition sensitizes resistant glioblastoma cells to temozolomide by downregulating the expression of DNA-repair gene Rad51.
    Clin Cancer Res. 2012 Nov 1;18(21):5961-71 PMID: 22977194
  28. Novel interactions between FOXM1 and CDC25A regulate the cell cycle.
    PLoS One. 2012;7(12):e51277 PMID: 23240008
  29. FoxM1 expression is significantly associated with cisplatin-based chemotherapy resistance and poor prognosis in advanced non-small cell lung cancer patients.
    Lung Cancer. 2013 Feb;79(2):173-9 PMID: 23177020
  30. Foxm1 transcription factor is required for lung fibrosis and epithelial-to-mesenchymal transition.
    EMBO J. 2013 Jan 23;32(2):231-44 PMID: 23288041
  31. Intratumor heterogeneity in human glioblastoma reflects cancer evolutionary dynamics.
    Proc Natl Acad Sci U S A. 2013 Mar 5;110(10):4009-14 PMID: 23412337
  32. MELK-dependent FOXM1 phosphorylation is essential for proliferation of glioma stem cells.
    Stem Cells. 2013 Jun;31(6):1051-63 PMID: 23404835
  33. FOXM1 promotes the epithelial to mesenchymal transition by stimulating the transcription of Slug in human breast cancer.
    Cancer Lett. 2013 Oct 28;340(1):104-12 PMID: 23856032
  34. Targeted therapy resistance mediated by dynamic regulation of extrachromosomal mutant EGFR DNA.
    Science. 2014 Jan 3;343(6166):72-6 PMID: 24310612
  35. Mutational analysis reveals the origin and therapy-driven evolution of recurrent glioma.
    Science. 2014 Jan 10;343(6167):189-93 PMID: 24336570
  36. Reconstructing and reprogramming the tumor-propagating potential of glioblastoma stem-like cells.
    Cell. 2014 Apr 24;157(3):580-94 PMID: 24726434
  37. Single-cell RNA-seq highlights intratumoral heterogeneity in primary glioblastoma.
    Science. 2014 Jun 20;344(6190):1396-401 PMID: 24925914
  38. EGFR variant heterogeneity in glioblastoma resolved through single-nucleus sequencing.
    Cancer Discov. 2014 Aug;4(8):956-71 PMID: 24893890
  39. Identification of human brain tumour initiating cells.
    Nature. 2004 Nov 18;432(7015):396-401 PMID: 15549107
  40. Analysis of gene expression and chemoresistance of CD133+ cancer stem cells in glioblastoma.
    Mol Cancer. 2006;5:67 PMID: 17140455
  41. FoxM1: at the crossroads of ageing and cancer.
    Biochim Biophys Acta. 2007 Jan;1775(1):92-102 PMID: 17014965
  42. Tight correlation between expression of the Forkhead transcription factor FOXM1 and HER2 in human breast cancer.
    BMC Cancer. 2008;8:42 PMID: 18254960
  43. Activation of FoxM1 during G2 requires cyclin A/Cdk-dependent relief of autorepression by the FoxM1 N-terminal domain.
    Mol Cell Biol. 2008 May;28(9):3076-87 PMID: 18285455
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2015-00-00
Epub
2015-00-07
Pages
e0137703
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC4596841
Subset
IM
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