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The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells

Cellular dedifferentiation is the regression of a cell from a specialized state to a more multipotent state and is implicated in cancer. However, the transcriptional network that prevents differentiated cells from reacquiring stem cell fate is so far unclear. Neuroblasts (NBs), the Drosophila neural...

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Autores principales: Froldi, Francesca, Szuperak, Milan, Weng, Chen-Fang, Shi, Wei, Papenfuss, Anthony T., Cheng, Louise Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4298133/
https://www.ncbi.nlm.nih.gov/pubmed/25593306
http://dx.doi.org/10.1101/gad.250282.114
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author Froldi, Francesca
Szuperak, Milan
Weng, Chen-Fang
Shi, Wei
Papenfuss, Anthony T.
Cheng, Louise Y.
author_facet Froldi, Francesca
Szuperak, Milan
Weng, Chen-Fang
Shi, Wei
Papenfuss, Anthony T.
Cheng, Louise Y.
author_sort Froldi, Francesca
collection PubMed
description Cellular dedifferentiation is the regression of a cell from a specialized state to a more multipotent state and is implicated in cancer. However, the transcriptional network that prevents differentiated cells from reacquiring stem cell fate is so far unclear. Neuroblasts (NBs), the Drosophila neural stem cells, are a model for the regulation of stem cell self-renewal and differentiation. Here we show that the Drosophila zinc finger transcription factor Nervous fingers 1 (Nerfin-1) locks neurons into differentiation, preventing their reversion into NBs. Following Prospero-dependent neuronal specification in the ganglion mother cell (GMC), a Nerfin-1-specific transcriptional program maintains differentiation in the post-mitotic neurons. The loss of Nerfin-1 causes reversion to multipotency and results in tumors in several neural lineages. Both the onset and rate of neuronal dedifferentiation in nerfin-1 mutant lineages are dependent on Myc- and target of rapamycin (Tor)-mediated cellular growth. In addition, Nerfin-1 is required for NB differentiation at the end of neurogenesis. RNA sequencing (RNA-seq) and chromatin immunoprecipitation (ChIP) analysis show that Nerfin-1 administers its function by repression of self-renewing-specific and activation of differentiation-specific genes. Our findings support the model of bidirectional interconvertibility between neural stem cells and their post-mitotic progeny and highlight the importance of the Nerfin-1-regulated transcriptional program in neuronal maintenance.
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spelling pubmed-42981332015-07-15 The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells Froldi, Francesca Szuperak, Milan Weng, Chen-Fang Shi, Wei Papenfuss, Anthony T. Cheng, Louise Y. Genes Dev Research Paper Cellular dedifferentiation is the regression of a cell from a specialized state to a more multipotent state and is implicated in cancer. However, the transcriptional network that prevents differentiated cells from reacquiring stem cell fate is so far unclear. Neuroblasts (NBs), the Drosophila neural stem cells, are a model for the regulation of stem cell self-renewal and differentiation. Here we show that the Drosophila zinc finger transcription factor Nervous fingers 1 (Nerfin-1) locks neurons into differentiation, preventing their reversion into NBs. Following Prospero-dependent neuronal specification in the ganglion mother cell (GMC), a Nerfin-1-specific transcriptional program maintains differentiation in the post-mitotic neurons. The loss of Nerfin-1 causes reversion to multipotency and results in tumors in several neural lineages. Both the onset and rate of neuronal dedifferentiation in nerfin-1 mutant lineages are dependent on Myc- and target of rapamycin (Tor)-mediated cellular growth. In addition, Nerfin-1 is required for NB differentiation at the end of neurogenesis. RNA sequencing (RNA-seq) and chromatin immunoprecipitation (ChIP) analysis show that Nerfin-1 administers its function by repression of self-renewing-specific and activation of differentiation-specific genes. Our findings support the model of bidirectional interconvertibility between neural stem cells and their post-mitotic progeny and highlight the importance of the Nerfin-1-regulated transcriptional program in neuronal maintenance. Cold Spring Harbor Laboratory Press 2015-01-15 /pmc/articles/PMC4298133/ /pubmed/25593306 http://dx.doi.org/10.1101/gad.250282.114 Text en © 2015 Froldi et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by-nc/4.0/ This article is distributed exclusively by Cold Spring Harbor Laboratory Press for the first six months after the full-issue publication date (see http://genesdev.cshlp.org/site/misc/terms.xhtml). After six months, it is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Research Paper
Froldi, Francesca
Szuperak, Milan
Weng, Chen-Fang
Shi, Wei
Papenfuss, Anthony T.
Cheng, Louise Y.
The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title_full The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title_fullStr The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title_full_unstemmed The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title_short The transcription factor Nerfin-1 prevents reversion of neurons into neural stem cells
title_sort transcription factor nerfin-1 prevents reversion of neurons into neural stem cells
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4298133/
https://www.ncbi.nlm.nih.gov/pubmed/25593306
http://dx.doi.org/10.1101/gad.250282.114
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