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Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts

OBJECTIVE: The NOD mouse strain has been widely used to investigate the pathology and genetic susceptibility for type 1 diabetes. Induced pluripotent stem cells (iPSCs) derived from this unique mouse strain would enable new strategies for investigating type 1 diabetes pathogenesis and potential ther...

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Autores principales: Liu, Jun, Ashton, Michelle P., Sumer, Huseyin, O’Bryan, Moira K., Brodnicki, Thomas C., Verma, Paul J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Diabetes Association 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3292312/
https://www.ncbi.nlm.nih.gov/pubmed/21464439
http://dx.doi.org/10.2337/db10-1540
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author Liu, Jun
Ashton, Michelle P.
Sumer, Huseyin
O’Bryan, Moira K.
Brodnicki, Thomas C.
Verma, Paul J.
author_facet Liu, Jun
Ashton, Michelle P.
Sumer, Huseyin
O’Bryan, Moira K.
Brodnicki, Thomas C.
Verma, Paul J.
author_sort Liu, Jun
collection PubMed
description OBJECTIVE: The NOD mouse strain has been widely used to investigate the pathology and genetic susceptibility for type 1 diabetes. Induced pluripotent stem cells (iPSCs) derived from this unique mouse strain would enable new strategies for investigating type 1 diabetes pathogenesis and potential therapeutic targets. The objective of this study was to determine whether somatic fibroblasts from NOD mice could be reprogrammed to become iPSCs, providing an alternative source of stem cells for the production of genetically modified NOD cells and mice. RESEARCH DESIGN AND METHODS: Adult tail-tip fibroblasts from male NOD mice were reprogrammed by retroviral transduction of the coding sequences of three transcription factors, OCT4, SOX2, and KLF4, in combination with a histone deacetylase inhibitor, valproic acid. RESULTS: Eighteen NOD iPSC lines were generated, and three of these cell lines were further characterized. All three cell lines exhibited silencing of the three reprogramming transgenes and reactivation of endogenous pluripotent markers (OCT4, SOX2, NANOG, REX1, and SSEA1). These NOD iPSCs readily differentiated in vitro to form embryoid bodies and in vivo by teratoma formation in immunodeficient mice. Moreover, NOD iPSCs were successfully transfected with a reporter transgene and were capable of contributing to the inner cell mass of C57BL/6 blastocysts, leading to the generation of a chimeric mouse. CONCLUSIONS: Adult tail-tip fibroblasts from NOD mice can be reprogrammed, without constitutive ectopic expression of transcription factors, to produce iPSCs that exhibit classic mouse embryonic stem cell (ESC) features. These NOD iPSCs can be maintained and propagated under normal ESC culture conditions to produce genetically altered cell lines, differentiated cells, and chimeric mice.
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spelling pubmed-32923122012-05-01 Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts Liu, Jun Ashton, Michelle P. Sumer, Huseyin O’Bryan, Moira K. Brodnicki, Thomas C. Verma, Paul J. Diabetes New Methodologies and Databases OBJECTIVE: The NOD mouse strain has been widely used to investigate the pathology and genetic susceptibility for type 1 diabetes. Induced pluripotent stem cells (iPSCs) derived from this unique mouse strain would enable new strategies for investigating type 1 diabetes pathogenesis and potential therapeutic targets. The objective of this study was to determine whether somatic fibroblasts from NOD mice could be reprogrammed to become iPSCs, providing an alternative source of stem cells for the production of genetically modified NOD cells and mice. RESEARCH DESIGN AND METHODS: Adult tail-tip fibroblasts from male NOD mice were reprogrammed by retroviral transduction of the coding sequences of three transcription factors, OCT4, SOX2, and KLF4, in combination with a histone deacetylase inhibitor, valproic acid. RESULTS: Eighteen NOD iPSC lines were generated, and three of these cell lines were further characterized. All three cell lines exhibited silencing of the three reprogramming transgenes and reactivation of endogenous pluripotent markers (OCT4, SOX2, NANOG, REX1, and SSEA1). These NOD iPSCs readily differentiated in vitro to form embryoid bodies and in vivo by teratoma formation in immunodeficient mice. Moreover, NOD iPSCs were successfully transfected with a reporter transgene and were capable of contributing to the inner cell mass of C57BL/6 blastocysts, leading to the generation of a chimeric mouse. CONCLUSIONS: Adult tail-tip fibroblasts from NOD mice can be reprogrammed, without constitutive ectopic expression of transcription factors, to produce iPSCs that exhibit classic mouse embryonic stem cell (ESC) features. These NOD iPSCs can be maintained and propagated under normal ESC culture conditions to produce genetically altered cell lines, differentiated cells, and chimeric mice. American Diabetes Association 2011-05 2011-04-23 /pmc/articles/PMC3292312/ /pubmed/21464439 http://dx.doi.org/10.2337/db10-1540 Text en © 2011 by the American Diabetes Association. Readers may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. See http://creativecommons.org/licenses/by-nc-nd/3.0/ for details.
spellingShingle New Methodologies and Databases
Liu, Jun
Ashton, Michelle P.
Sumer, Huseyin
O’Bryan, Moira K.
Brodnicki, Thomas C.
Verma, Paul J.
Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title_full Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title_fullStr Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title_full_unstemmed Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title_short Generation of Stable Pluripotent Stem Cells From NOD Mouse Tail-Tip Fibroblasts
title_sort generation of stable pluripotent stem cells from nod mouse tail-tip fibroblasts
topic New Methodologies and Databases
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3292312/
https://www.ncbi.nlm.nih.gov/pubmed/21464439
http://dx.doi.org/10.2337/db10-1540
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