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Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells

Oligodendrocytes are the myelinating glia of the central nervous system and ensure rapid saltatory conduction. Shortage or loss of these cells leads to severe malfunctions as observed in human leukodystrophies and multiple sclerosis, and their replenishment by reprogramming or cell conversion strate...

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Autores principales: Weider, Matthias, Wegener, Amélie, Schmitt, Christian, Küspert, Melanie, Hillgärtner, Simone, Bösl, Michael R., Hermans-Borgmeyer, Irm, Nait-Oumesmar, Brahim, Wegner, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4334169/
https://www.ncbi.nlm.nih.gov/pubmed/25680202
http://dx.doi.org/10.1371/journal.pgen.1005008
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author Weider, Matthias
Wegener, Amélie
Schmitt, Christian
Küspert, Melanie
Hillgärtner, Simone
Bösl, Michael R.
Hermans-Borgmeyer, Irm
Nait-Oumesmar, Brahim
Wegner, Michael
author_facet Weider, Matthias
Wegener, Amélie
Schmitt, Christian
Küspert, Melanie
Hillgärtner, Simone
Bösl, Michael R.
Hermans-Borgmeyer, Irm
Nait-Oumesmar, Brahim
Wegner, Michael
author_sort Weider, Matthias
collection PubMed
description Oligodendrocytes are the myelinating glia of the central nervous system and ensure rapid saltatory conduction. Shortage or loss of these cells leads to severe malfunctions as observed in human leukodystrophies and multiple sclerosis, and their replenishment by reprogramming or cell conversion strategies is an important research aim. Using a transgenic approach we increased levels of the transcription factor Sox10 throughout the mouse embryo and thereby prompted Fabp7-positive glial cells in dorsal root ganglia of the peripheral nervous system to convert into cells with oligodendrocyte characteristics including myelin gene expression. These rarely studied and poorly characterized satellite glia did not go through a classic oligodendrocyte precursor cell stage. Instead, Sox10 directly induced key elements of the regulatory network of differentiating oligodendrocytes, including Olig2, Olig1, Nkx2.2 and Myrf. An upstream enhancer mediated the direct induction of the Olig2 gene. Unlike Sox10, Olig2 was not capable of generating oligodendrocyte-like cells in dorsal root ganglia. Our findings provide proof-of-concept that Sox10 can convert conducive cells into oligodendrocyte-like cells in vivo and delineates options for future therapeutic strategies.
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spelling pubmed-43341692015-02-24 Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells Weider, Matthias Wegener, Amélie Schmitt, Christian Küspert, Melanie Hillgärtner, Simone Bösl, Michael R. Hermans-Borgmeyer, Irm Nait-Oumesmar, Brahim Wegner, Michael PLoS Genet Research Article Oligodendrocytes are the myelinating glia of the central nervous system and ensure rapid saltatory conduction. Shortage or loss of these cells leads to severe malfunctions as observed in human leukodystrophies and multiple sclerosis, and their replenishment by reprogramming or cell conversion strategies is an important research aim. Using a transgenic approach we increased levels of the transcription factor Sox10 throughout the mouse embryo and thereby prompted Fabp7-positive glial cells in dorsal root ganglia of the peripheral nervous system to convert into cells with oligodendrocyte characteristics including myelin gene expression. These rarely studied and poorly characterized satellite glia did not go through a classic oligodendrocyte precursor cell stage. Instead, Sox10 directly induced key elements of the regulatory network of differentiating oligodendrocytes, including Olig2, Olig1, Nkx2.2 and Myrf. An upstream enhancer mediated the direct induction of the Olig2 gene. Unlike Sox10, Olig2 was not capable of generating oligodendrocyte-like cells in dorsal root ganglia. Our findings provide proof-of-concept that Sox10 can convert conducive cells into oligodendrocyte-like cells in vivo and delineates options for future therapeutic strategies. Public Library of Science 2015-02-13 /pmc/articles/PMC4334169/ /pubmed/25680202 http://dx.doi.org/10.1371/journal.pgen.1005008 Text en © 2015 Weider et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Weider, Matthias
Wegener, Amélie
Schmitt, Christian
Küspert, Melanie
Hillgärtner, Simone
Bösl, Michael R.
Hermans-Borgmeyer, Irm
Nait-Oumesmar, Brahim
Wegner, Michael
Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title_full Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title_fullStr Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title_full_unstemmed Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title_short Elevated In Vivo Levels of a Single Transcription Factor Directly Convert Satellite Glia into Oligodendrocyte-like Cells
title_sort elevated in vivo levels of a single transcription factor directly convert satellite glia into oligodendrocyte-like cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4334169/
https://www.ncbi.nlm.nih.gov/pubmed/25680202
http://dx.doi.org/10.1371/journal.pgen.1005008
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