Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate

<p>Abstract</p> <p>Background</p> <p>In the developing vertebrate nervous system elevated levels of Notch signaling activity can block neurogenesis and promote formation of glial cells. The mechanisms that limit Notch activity to balance formation of neurons and glia fr...

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Main Authors: Snyder Julia L, Kearns Christina A, Appel Bruce
Format: Article
Language:English
Published: BMC 2012-05-01
Series:Neural Development
Subjects:
Online Access:http://www.neuraldevelopment.com/content/7/1/15
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spelling doaj-9ece54e0b8db4122a433c4ebff8e67112020-11-24T23:56:00ZengBMCNeural Development1749-81042012-05-01711510.1186/1749-8104-7-15Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fateSnyder Julia LKearns Christina AAppel Bruce<p>Abstract</p> <p>Background</p> <p>In the developing vertebrate nervous system elevated levels of Notch signaling activity can block neurogenesis and promote formation of glial cells. The mechanisms that limit Notch activity to balance formation of neurons and glia from neural precursors are poorly understood.</p> <p>Results</p> <p>By screening for mutations that disrupt oligodendrocyte development in zebrafish we found one allele, called <it>vu56</it>, that produced excess oligodendrocyte progenitor cells (OPCs). Positional cloning revealed that the <it>vu56</it> allele is a mutation of <it>fbxw7</it>, which encodes the substrate recognition component of a ubiquitin ligase that targets Notch and other proteins for degradation. To investigate the basis of the mutant phenotype we performed in vivo, time-lapse imaging, which revealed that the increase in OPC number resulted from production of extra OPCs by ventral spinal cord precursors and not from changes in OPC proliferation or death. Notch signaling activity was elevated in spinal cord precursors of <it>fbxw7</it> mutant zebrafish and inhibition of Notch signaling suppressed formation of excess OPCs.</p> <p>Conclusion</p> <p>Notch signaling promotes glia cell formation from neural precursors in vertebrate embryos. Our data indicate that Fbxw7 helps attenuate Notch signaling during zebrafish neural development thereby limiting the number of OPCs.</p> http://www.neuraldevelopment.com/content/7/1/15NotchGliaOligodendrocyteMyelinNeural precursorZebrafish
collection DOAJ
language English
format Article
sources DOAJ
author Snyder Julia L
Kearns Christina A
Appel Bruce
spellingShingle Snyder Julia L
Kearns Christina A
Appel Bruce
Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
Neural Development
Notch
Glia
Oligodendrocyte
Myelin
Neural precursor
Zebrafish
author_facet Snyder Julia L
Kearns Christina A
Appel Bruce
author_sort Snyder Julia L
title Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
title_short Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
title_full Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
title_fullStr Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
title_full_unstemmed Fbxw7 regulates Notch to control specification of neural precursors for oligodendrocyte fate
title_sort fbxw7 regulates notch to control specification of neural precursors for oligodendrocyte fate
publisher BMC
series Neural Development
issn 1749-8104
publishDate 2012-05-01
description <p>Abstract</p> <p>Background</p> <p>In the developing vertebrate nervous system elevated levels of Notch signaling activity can block neurogenesis and promote formation of glial cells. The mechanisms that limit Notch activity to balance formation of neurons and glia from neural precursors are poorly understood.</p> <p>Results</p> <p>By screening for mutations that disrupt oligodendrocyte development in zebrafish we found one allele, called <it>vu56</it>, that produced excess oligodendrocyte progenitor cells (OPCs). Positional cloning revealed that the <it>vu56</it> allele is a mutation of <it>fbxw7</it>, which encodes the substrate recognition component of a ubiquitin ligase that targets Notch and other proteins for degradation. To investigate the basis of the mutant phenotype we performed in vivo, time-lapse imaging, which revealed that the increase in OPC number resulted from production of extra OPCs by ventral spinal cord precursors and not from changes in OPC proliferation or death. Notch signaling activity was elevated in spinal cord precursors of <it>fbxw7</it> mutant zebrafish and inhibition of Notch signaling suppressed formation of excess OPCs.</p> <p>Conclusion</p> <p>Notch signaling promotes glia cell formation from neural precursors in vertebrate embryos. Our data indicate that Fbxw7 helps attenuate Notch signaling during zebrafish neural development thereby limiting the number of OPCs.</p>
topic Notch
Glia
Oligodendrocyte
Myelin
Neural precursor
Zebrafish
url http://www.neuraldevelopment.com/content/7/1/15
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AT kearnschristinaa fbxw7regulatesnotchtocontrolspecificationofneuralprecursorsforoligodendrocytefate
AT appelbruce fbxw7regulatesnotchtocontrolspecificationofneuralprecursorsforoligodendrocytefate
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