FGF-receptor signalling controls neural cell diversity in the zebrafish hindbrain by regulating olig2 and sox9

The mechanisms underlying the generation of neural cell diversity are the subject of intense investigation, which has highlighted the involvement of different signalling molecules including Shh, BMP and Wnt. By contrast, relatively little is known about FGF in this process. In this report we identif...

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Veröffentlicht in:Development (Cambridge) 2010-01, Vol.137 (1), p.33-42
Hauptverfasser: Esain, Virginie, Postlethwait, John H, Charnay, Patrick, Ghislain, Julien
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container_title Development (Cambridge)
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creator Esain, Virginie
Postlethwait, John H
Charnay, Patrick
Ghislain, Julien
description The mechanisms underlying the generation of neural cell diversity are the subject of intense investigation, which has highlighted the involvement of different signalling molecules including Shh, BMP and Wnt. By contrast, relatively little is known about FGF in this process. In this report we identify an FGF-receptor-dependent pathway in zebrafish hindbrain neural progenitors that give rise to somatic motoneurons, oligodendrocyte progenitors and differentiating astroglia. Using a combination of chemical and genetic approaches to conditionally inactivate FGF-receptor signalling, we investigate the role of this pathway. We show that FGF-receptor signalling is not essential for the survival or maintenance of hindbrain neural progenitors but controls their fate by coordinately regulating key transcription factors. First, by cooperating with Shh, FGF-receptor signalling controls the expression of olig2 , a patterning gene essential for the specification of somatic motoneurons and oligodendrocytes. Second, FGF-receptor signalling controls the development of both oligodendrocyte progenitors and astroglia through the regulation of sox9 , a gliogenic transcription factor the function of which we show to be conserved in the zebrafish hindbrain. Overall, for the first time in vivo, our results reveal a mechanism of FGF in the control of neural cell diversity.
doi_str_mv 10.1242/dev.038026
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subjects Animals
Basic Helix-Loop-Helix Transcription Factors - genetics
Basic Helix-Loop-Helix Transcription Factors - metabolism
Basic Helix-Loop-Helix Transcription Factors - physiology
Development and Stem Cells
Gene Expression Regulation, Developmental
Genotype
Immunohistochemistry
In Situ Hybridization
In Situ Nick-End Labeling
Nerve Tissue Proteins - genetics
Nerve Tissue Proteins - metabolism
Nerve Tissue Proteins - physiology
Neurons - cytology
Neurons - metabolism
Oligodendrocyte Transcription Factor 2
Receptors, Fibroblast Growth Factor - metabolism
Rhombencephalon - cytology
Rhombencephalon - metabolism
Signal Transduction - genetics
Signal Transduction - physiology
SOX9 Transcription Factor - genetics
SOX9 Transcription Factor - metabolism
SOX9 Transcription Factor - physiology
Zebrafish
Zebrafish Proteins - genetics
Zebrafish Proteins - metabolism
Zebrafish Proteins - physiology
title FGF-receptor signalling controls neural cell diversity in the zebrafish hindbrain by regulating olig2 and sox9
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