Wnt activation is implicated in glioblastoma radioresistance
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Do-Hyun Nam | Heekyoung Yang | D. Nam | Yonghyun Kim | Jeongwu Lee | K. Joo | Kyeung Min Joo | Jeongwu Lee | Juyoun Jin | Misuk Kim | Yonghyun Kim | Kang Ho Kim | Jeena Lee | Young-Ae Lee | Se Jeong Lee | Kernyu Park | K. Kim | Juyoun Jin | Heekyoung Yang | S. J. Lee | Kernyu Park | J. Lee | Misuk Kim | Young-Ae Lee
[1] J. Laterra,et al. Targeting the c-Met Pathway Potentiates Glioblastoma Responses to γ-Radiation , 2005, Clinical Cancer Research.
[2] D. Richel,et al. Targeting Wnt Signaling in Colon Cancer Stem Cells , 2010, Clinical Cancer Research.
[3] D. Nam,et al. Frizzled 4 regulates stemness and invasiveness of migrating glioma cells established by serial intracranial transplantation. , 2011, Cancer research.
[4] William W Harless. Cancer treatments transform residual cancer cell phenotype , 2011, Cancer Cell International.
[5] D. Curiel,et al. Oncolytic adenoviruses targeted to cancer stem cells , 2009, Molecular Cancer Therapeutics.
[6] Qiulian Wu,et al. L1CAM regulates DNA damage checkpoint response of glioblastoma stem cells through NBS1 , 2011, The EMBO journal.
[7] P. Lambin,et al. E-Cadherin loss associated with EMT promotes radioresistance in human tumor cells. , 2011, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[8] Fariba Behbod,et al. Correction for Woodward et al., WNT/β-catenin mediates radiation resistance of mouse mammary progenitor cells , 2007, Proceedings of the National Academy of Sciences.
[9] C. Miracco,et al. β-catenin and Gli1 are prognostic markers in glioblastoma , 2011, Cancer biology & therapy.
[10] Yan Wang,et al. Expression of Cyr61, CTGF, and WISP-1 Correlates with Clinical Features of Lung Cancer , 2007, PloS one.
[11] M. Bjørås,et al. Mitochondrial DNA Integrity Is Essential For Mitochondrial Maturation During Differentiation of Neural Stem Cells , 2010, Stem cells.
[12] David M. Berman,et al. Tissue repair and stem cell renewal in carcinogenesis , 2004, Nature.
[13] Yuri Kotliarov,et al. 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. , 2006, Cancer cell.
[14] A. J. Valente,et al. WNT1-inducible signaling pathway protein-1 activates diverse cell survival pathways and blocks doxorubicin-induced cardiomyocyte death. , 2010, Cellular signalling.
[15] B. Scheithauer,et al. The 2007 WHO classification of tumours of the central nervous system , 2007, Acta Neuropathologica.
[16] F. Kolligs,et al. Wnt signaling as a therapeutic target for cancer. , 2007, Methods in molecular biology.
[17] D. Nam,et al. Prospective identification of cancer stem cells with the surface antigen CD133. , 2009, Methods in molecular biology.
[18] Mark W. Dewhirst,et al. Glioma stem cells promote radioresistance by preferential activation of the DNA damage response , 2006, Nature.
[19] B. Sullenger,et al. Notch Promotes Radioresistance of Glioma Stem Cells , 2009, Stem cells.
[20] R. McLendon,et al. Integrin alpha 6 regulates glioblastoma stem cells. , 2010, Cell stem cell.
[21] M. Junier,et al. Alternative Lengthening of Telomeres in Human Glioma Stem Cells , 2011, Stem cells.
[22] T. Mikkelsen,et al. The induction of autophagy by γ‐radiation contributes to the radioresistance of glioma stem cells , 2009, International journal of cancer.
[23] A Rimner,et al. Sublethal irradiation promotes migration and invasiveness of glioma cells: implications for radiotherapy of human glioblastoma. , 2001, Cancer research.
[24] R. Henkelman,et al. Identification of human brain tumour initiating cells , 2004, Nature.
[25] D. Louis. WHO classification of tumours of the central nervous system , 2007 .
[26] D. Nam,et al. Cancer stem cells and their mechanism of chemo-radiation resistance. , 2009, International journal of stem cells.
[27] K. Camphausen,et al. Microenvironmental Regulation of Glioblastoma Radioresponse , 2010, Clinical Cancer Research.
[28] H. Clevers,et al. Wnt signalling in stem cells and cancer , 2005, Nature.
[29] Li-Hsin Chen,et al. Enhancement of radiosensitivity in human glioblastoma cells by the DNA N-mustard alkylating agent BO-1051 through augmented and sustained DNA damage response , 2011, Radiation oncology.
[30] F. DiMeco,et al. Identification of cell surface glycoprotein markers for glioblastoma-derived stem-like cells using a lectin microarray and LC-MS/MS approach. , 2010, Journal of proteome research.
[31] A. Levine,et al. WISP-1 attenuates p53-mediated apoptosis in response to DNA damage through activation of the Akt kinase. , 2002, Genes & development.
[32] Marc W. Kirschner,et al. Tankyrase inhibition stabilizes axin and antagonizes Wnt signalling , 2009, Nature.
[33] H. Fine,et al. SSEA-1 is an enrichment marker for tumor-initiating cells in human glioblastoma. , 2009, Cell stem cell.
[34] Dong-Sup Lee,et al. Clinical and biological implications of CD133-positive and CD133-negative cells in glioblastomas , 2008, Laboratory Investigation.
[35] D. Figarella-Branger,et al. A2B5 Cells from Human Glioblastoma have Cancer Stem Cell Properties , 2010, Brain pathology.
[36] J. Laterra,et al. Targeting the c-Met pathway potentiates glioblastoma responses to gamma-radiation. , 2005, Clinical cancer research : an official journal of the American Association for Cancer Research.
[37] Subha Madhavan,et al. Rembrandt: Helping Personalized Medicine Become a Reality through Integrative Translational Research , 2009, Molecular Cancer Research.
[38] J. Haveman,et al. Clonogenic assay of cells in vitro , 2006, Nature Protocols.
[39] Alexander Brawanski,et al. CD133(+) and CD133(-) glioblastoma-derived cancer stem cells show differential growth characteristics and molecular profiles. , 2007, Cancer research.
[40] Jian Wang,et al. CD133 negative glioma cells form tumors in nude rats and give rise to CD133 positive cells , 2008, International journal of cancer.