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Published on: January 30, 2014
The role of Axin2 in calvarial morphogenesis and craniosynostosis
Hsiao-Man Ivy Yu1, Boris Jerchow, Tzong-Jen Sheu
1Center for Oral Biology, Department of Biomedical Genetics, Abs Institute of Biomedical Sciences, School of Medicine and Dentistry, University of Rochester, 601 Elmwood Avenue, Rochester, NY 14642, USA.
Abstract:
Axin1 and its homolog Axin2/conductin/Axil are negative regulators of the canonical Wnt pathway that suppress signal transduction by promoting degradation of beta-catenin. Mice with deletion of Axin1 exhibit defects in axis determination and brain patterning during early embryonic development. We show that Axin2 is expressed in the osteogenic fronts and periosteum of developing sutures during skull morphogenesis. Targeted disruption of Axin2 in mice induces malformations of skull structures, a phenotype resembling craniosynostosis in humans. In the mutants, premature fusion of cranial sutures occurs at early postnatal stages. To elucidate the mechanism of craniosynostosis, we studied intramembranous ossification in Axin2-null mice. The calvarial osteoblast development is significantly affected by the Axin2 mutation. The Axin2 mutant displays enhanced expansion of osteoprogenitors, accelerated ossification, stimulated expression of osteogenic markers and increases in mineralization. Inactivation of Axin2 promotes osteoblast proliferation and differentiation in vivo and in vitro. Furthermore, as the mammalian skull is formed from cranial skeletogenic mesenchyme, which is derived from mesoderm and neural crest, our data argue for a region-specific effect of Axin2 on neural crest dependent skeletogenesis. The craniofacial anomalies caused by the Axin2 mutation are mediated through activation of beta-catenin signaling, suggesting a novel role for the Wnt pathway in skull morphogenesis.
Insights
Axin2 inactivation in mice causes premature skull fusion, mimicking human craniosynostosis. This occurs due to enhanced osteoblast activity and Wnt pathway activation, impacting neural crest-derived skull development.
Area of Science:
- Developmental biology
- Genetics
- Molecular biology
Background:
- Axin1 and Axin2 are negative regulators of the Wnt pathway, controlling beta-catenin degradation.
- Axin1 deletion causes embryonic axis and brain patterning defects.
- Axin2 is present in developing skull sutures during morphogenesis.
Purpose of the Study:
- To investigate the role of Axin2 in skull morphogenesis.
- To elucidate the mechanism behind Axin2-induced craniosynostosis.
Main Methods:
- Targeted disruption of Axin2 in mice.
- Analysis of skull development and intramembranous ossification in Axin2-null mice.
- In vivo and in vitro studies of osteoblast proliferation and differentiation.
Main Results:
- Axin2 disruption leads to premature cranial suture fusion and skull malformations.
- Axin2 deficiency enhances osteoprogenitor expansion, ossification, and mineralization.
- Inactivation of Axin2 promotes osteoblast proliferation and differentiation via beta-catenin signaling.
Conclusions:
- Axin2 plays a critical role in regulating skull morphogenesis.
- Axin2 deficiency causes craniosynostosis through Wnt/beta-catenin pathway activation.
- Axin2's effect is region-specific, particularly on neural crest-derived skeletogenesis.
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