Retracted: Marker-independent identification of glioma-initiating cells (original) (raw)
References
Wechsler-Reya, R. & Scott, M.P. The developmental biology of brain tumors. Annu. Rev. Neurosci.24, 385–428 (2001). ArticleCAS Google Scholar
Read, T.A., Hegedus, B., Wechsler-Reya, R. & Gutmann, D.H. The neurobiology of neurooncology. Ann. Neurol.60, 3–11 (2006). ArticleCAS Google Scholar
Sanai, N., Alvarez-Buylla, A. & Berger, M.S. Neural stem cells and the origin of gliomas. N. Engl. J. Med.353, 811–822 (2005). ArticleCAS Google Scholar
Galli, R. et al. Isolation and characterization of tumorigenic, stem-like neural precursors from human glioblastoma. Cancer Res.64, 7011–7021 (2004). ArticleCAS Google Scholar
Hemmati, H.D. et al. Cancerous stem cells can arise from pediatric brain tumors. Proc. Natl. Acad. Sci. USA100, 15178–15183 (2003). ArticleCAS Google Scholar
Singh, S.K. et al. Identification of a cancer stem cell in human brain tumors. Cancer Res.63, 5821–5828 (2003). CASPubMed Google Scholar
Singh, S.K. et al. Identification of human brain tumour initiating cells. Nature432, 396–401 (2004). ArticleCAS Google Scholar
Clement, V., Dutoit, V., Marino, D., Dietrich, P.Y. & Radovanovic, I. Limits of CD133 as a marker of glioma self-renewing cells. Int. J. Cancer125, 244–248 (2009). ArticleCAS Google Scholar
Wang, J. et al. CD133 negative glioma cells form tumors in nude rats and give rise to CD133 positive cells. Int. J. Cancer122, 761–768 (2008). ArticleCAS Google Scholar
Beier, D. et al. CD133(+) and CD133(−) glioblastoma-derived cancer stem cells show differential growth characteristics and molecular profiles. Cancer Res.67, 4010–4015 (2007). ArticleCAS Google Scholar
Ogden, A.T. et al. Identification of A2B5+CD133− tumor-initiating cells in adult human gliomas. Neurosurgery62, 505–514 (2008). Article Google Scholar
Hill, R.P. Identifying cancer stem cells in solid tumors: case not proven. Cancer Res.66, 1891–1895 (2006). ArticleCAS Google Scholar
Kern, S.E. & Shibata, D. The fuzzy math of solid tumor stem cells: a perspective. Cancer Res.67, 8985–8988 (2007). ArticleCAS Google Scholar
Yuan, X. et al. Isolation of cancer stem cells from adult glioblastoma multiforme. Oncogene23, 9392–9400 (2004). ArticleCAS Google Scholar
Piccirillo, S.G. et al. Bone morphogenetic proteins inhibit the tumorigenic potential of human brain tumour-initiating cells. Nature444, 761–765 (2006). ArticleCAS Google Scholar
Park, D.M. et al. N-CoR pathway targeting induces glioblastoma derived cancer stem cell differentiation. Cell Cycle6, 467–470 (2007). ArticleCAS Google Scholar
Reya, T., Morrison, S.J., Clarke, M.F. & Weissman, I.L. Stem cells, cancer, and cancer stem cells. Nature414, 105–111 (2001). ArticleCAS Google Scholar
Clement, V., Sanchez, P., de Tribolet, N., Radovanovic, I. & Ruiz, I.A.A. HEDGEHOG-GLI1 signaling regulates human glioma growth, cancer stem cell self-renewal, and tumorigenicity. Curr. Biol.17, 165–172 (2007). ArticleCAS Google Scholar
Gunther, H.S. et al. Glioblastoma-derived stem cell-enriched cultures form distinct subgroups according to molecular and phenotypic criteria. Oncogene27, 2897–2909 (2008). ArticleCAS Google Scholar
Phillips, H.S. et al. Molecular subclasses of high-grade glioma predict prognosis, delineate a pattern of disease progression, and resemble stages in neurogenesis. Cancer Cell9, 157–173 (2006). ArticleCAS Google Scholar
Kann, O., Schuchmann, S., Buchheim, K. & Heinemann, U. Coupling of neuronal activity and mitochondrial metabolism as revealed by NAD(P)H fluorescence signals in organotypic hippocampal slice cultures of the rat. Neuroscience119, 87–100 (2003). ArticleCAS Google Scholar
Schuchmann, S., Kovacs, R., Kann, O., Heinemann, U. & Buchheim, K. Monitoring NAD(P)H autofluorescence to assess mitochondrial metabolic functions in rat hippocampal-entorhinal cortex slices. Brain Res. Brain Res. Protoc.7, 267–276 (2001). ArticleCAS Google Scholar
Reyes, J.M. et al. Metabolic changes in mesenchymal stem cells in osteogenic medium measured by autofluorescence spectroscopy. Stem Cells24, 1213–1217 (2006). ArticleCAS Google Scholar
Buzzeo, M.P., Scott, E.W. & Cogle, C.R. The hunt for cancer-initiating cells: a history stemming from leukemia. Leukemia21, 1619–1627 (2007). ArticleCAS Google Scholar
Kaplan, R.N., Psaila, B. & Lyden, D. Niche-to-niche migration of bone-marrow-derived cells. Trends Mol. Med.13, 72–81 (2007). ArticleCAS Google Scholar
Campbell, L.L. & Polyak, K. Breast tumor heterogeneity: cancer stem cells or clonal evolution? Cell Cycle6, 2332–2338 (2007). ArticleCAS Google Scholar
Gilbertson, R.J. & Rich, J.N. Making a tumour's bed: glioblastoma stem cells and the vascular niche. Nat. Rev. Cancer7, 733–736 (2007). ArticleCAS Google Scholar
Doetsch, F., Caille, I., Lim, D.A., Garcia-Verdugo, J.M. & Alvarez-Buylla, A. Subventricular zone astrocytes are neural stem cells in the adult mammalian brain. Cell97, 703–716 (1999). ArticleCAS Google Scholar
Dontu, G., Al-Hajj, M., Abdallah, W.M., Clarke, M.F. & Wicha, M.S. Stem cells in normal breast development and breast cancer. Cell Prolif.36 (Suppl. 1), 59–72 (2003). ArticleCAS Google Scholar