Prox1 regulates the notch1-mediated inhibition of neurogenesis.
Details
Serval ID
serval:BIB_BD9C000B5DDB
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
Prox1 regulates the notch1-mediated inhibition of neurogenesis.
Journal
PLoS biology
ISSN
1545-7885 (Electronic)
ISSN-L
1544-9173
Publication state
Published
Issued date
21/12/2010
Peer-reviewed
Oui
Volume
8
Number
12
Pages
e1000565
Language
english
Notes
Publication types: Journal Article ; Research Support, Non-U.S. Gov't
Publication Status: epublish
Publication Status: epublish
Abstract
Activation of Notch1 signaling in neural progenitor cells (NPCs) induces self-renewal and inhibits neurogenesis. Upon neuronal differentiation, NPCs overcome this inhibition, express proneural genes to induce Notch ligands, and activate Notch1 in neighboring NPCs. The molecular mechanism that coordinates Notch1 inactivation with initiation of neurogenesis remains elusive. Here, we provide evidence that Prox1, a transcription repressor and downstream target of proneural genes, counteracts Notch1 signaling via direct suppression of Notch1 gene expression. By expression studies in the developing spinal cord of chick and mouse embryo, we showed that Prox1 is limited to neuronal precursors residing between the Notch1+ NPCs and post-mitotic neurons. Physiological levels of Prox1 in this tissue are sufficient to allow binding at Notch1 promoter and they are critical for proper Notch1 transcriptional regulation in vivo. Gain-of-function studies in the chick neural tube and mouse NPCs suggest that Prox1-mediated suppression of Notch1 relieves its inhibition on neurogenesis and allows NPCs to exit the cell cycle and differentiate. Moreover, loss-of-function in the chick neural tube shows that Prox1 is necessary for suppression of Notch1 outside the ventricular zone, inhibition of active Notch signaling, down-regulation of NPC markers, and completion of neuronal differentiation program. Together these data suggest that Prox1 inhibits Notch1 gene expression to control the balance between NPC self-renewal and neuronal differentiation.
Keywords
Amino Acid Sequence, Animals, Cell Differentiation, Chick Embryo, Gene Expression Regulation, Developmental, Homeodomain Proteins/genetics, Homeodomain Proteins/metabolism, Mice, Neural Stem Cells/cytology, Neural Stem Cells/metabolism, Neural Tube/cytology, Neural Tube/embryology, Neural Tube/metabolism, Neurogenesis, Receptor, Notch1/genetics, Receptor, Notch1/metabolism, Signal Transduction, Tumor Suppressor Proteins/genetics, Tumor Suppressor Proteins/metabolism
Pubmed
Web of science
Open Access
Yes
Create date
25/02/2011 10:30
Last modification date
14/05/2024 7:59