Literature DB >> 14990951

Telomerase immortalization of neuronally restricted progenitor cells derived from the human fetal spinal cord.

Neeta S Roy1, Takahiro Nakano, H Michael Keyoung, Martha Windrem, William K Rashbaum, M Lita Alonso, Jian Kang, Weiguo Peng, Melissa K Carpenter, Jane Lin, Maiken Nedergaard, Steven A Goldman.   

Abstract

Lineage-restricted progenitors of the central nervous system (CNS) are not readily expandable because their mitotic competence is limited. Here we used retroviral overexpression of human telomerase reverse transcriptase (hTERT) to immortalize progenitors from human fetal spinal cord. The hTERT-immortalized cells divided in basic fibroblast growth factor (bFGF) expressed high telomerase activity, and gave rise to phenotypically restricted subpopulations of either glia or neurons. The latter included a prototypic line, hSC11V-TERT, that gave rise only to neurons. These included both chx10(+) interneurons and Islet1(+)/Hb9(+)/ChAT(+) motor neurons; the latter were recognized by green fluorescent protein (GFP) driven by the Hb9 enhancer. The neurons were postmitotic and achieved electrophysiologic competence. Upon xenograft to both fetal rat brain and injured adult spinal cord, they matured as neurons and survived for 6 months, with no evident tumorigenesis. The cells have survived >168 doublings in vitro, with karyotypic normalcy and without replicative senescence. hTERT overexpression thus permits the generation of progenitor lines able to give rise to phenotypically restricted neurons.

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Year:  2004        PMID: 14990951     DOI: 10.1038/nbt944

Source DB:  PubMed          Journal:  Nat Biotechnol        ISSN: 1087-0156            Impact factor:   54.908


  32 in total

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2.  Immortalization and characterization of lineage-restricted neuronal progenitor cells derived from the porcine olfactory bulb.

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3.  Prospective identification, isolation, and profiling of a telomerase-expressing subpopulation of human neural stem cells, using sox2 enhancer-directed fluorescence-activated cell sorting.

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Review 5.  Cell replacement therapy in neurological disease.

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9.  MePR: a novel human mesenchymal progenitor model with characteristics of pluripotency.

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Review 10.  Stem cells for ischemic brain injury: a critical review.

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