Spontaneous transformation of human adult nontumorigenic stem cells to cancer stem cells is driven by genomic instability in a human model of glioblastoma
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Shiras, Anjali
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
Shiras, Anjali
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T, Sivarajan Chettiar
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
T, Sivarajan Chettiar
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Shepal, Varsha
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
Shepal, Varsha
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Rajendran, Ganeshkumar
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
Rajendran, Ganeshkumar
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Prasad, G. Rajendra
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
Prasad, G. Rajendra
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Shastry, Padma
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Natl Ctr Cell Sci, Pune 411007, Maharashtra, IndiaNatl Ctr Cell Sci, Pune 411007, Maharashtra, India
Shastry, Padma
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[1] Natl Ctr Cell Sci, Pune 411007, Maharashtra, India
The presence of a CD133+/nestin+ population in brain tumors suggests that a normal neural stem cell may be the cell of origin for gliomas. We have identified human CD133-positive NSCs from adult glioma tissue and established them as long-term in vitro cultures human neuroglial culture (HNGC)-1. Replicative senescence in HNGC-1 led to a high level of genomic instability and emergence of a spontaneously immortalized clone that developed into cell line HNGC-2 with features of cancer stem cells (CSCs), which include the ability for self-renewal and the capacity to form CD133-positive neurospheres and develop intracranial tumors. The data from our study specify an important role of genomic instability in initiation of transformed state as well as its progression into highly tumorigenic CSCs. The activated forms of Notch and Hes isoforms were expressed in both nonneoplastic neural stem cells and brain tumor stem cells derived from it. Importantly, a significant overexpression of these molecules was found in the brain tumor stem cells. These findings suggest that this model comprised of HNGC-1 and HNGC-2 cells would be a useful system for studying pathways involved in self-renewal of stem cells and their transformation to cancer stem cells.