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Updated: Jul 27, 2025

Isolation of Whole Cell Protein Lysates from Mouse Facial Processes and Cultured Palatal Mesenchyme Cells for Phosphoprotein Analysis
Published on: April 1, 2022
Developmental impairments of craniofacial bone and cartilage in transgenic mice expressing FGF10
Hirotaka Yoshioka1,2, Kazuko Kagawa2,3, Tomoko Minamizaki2
1Department of Anatomy, School of Medicine, International University of Health and Welfare, Chiba, Japan.
Abstract:
Mutations in a common extracellular domain of fibroblast growth factor receptor (FGFR)-2 isoforms (type IIIb and IIIc) cause craniosynostosis syndrome and chondrodysplasia syndrome. FGF10, a major ligand for FGFR2-IIIb and FGFR1-IIIb, is a key participant in the epithelial-mesenchymal interactions required for morphogenetic events. FGF10 also regulates preadipocyte differentiation and early chondrogenesis in vitro, suggesting that FGF10-FGFR signaling may be involved in craniofacial skeletogenesis in vivo. To test this hypothesis, we used a tet-on doxycycline-inducible transgenic mouse model (FGF10 Tg) to overexpress Fgf10 from embryonic day 12.5. Fgf10 expression was 73.3-fold higher in FGF10 Tg than in wild-type mice. FGF10 Tg mice exhibited craniofacial anomalies, such as a short rostrum and mandible, an underdeveloped (cleft) palate, and no tympanic ring. Opposite effects on chondrogenesis in different anatomical regions were seen, e.g., hyperplasia in the nasal septum and hypoplasia in the mandibular condyle. We found an alternative splicing variant of Fgfr2-IIIb with a predicted translation product lacking the transmembrane domain, and suggesting a soluble form of FGFR2-IIIb (sFGFR2-IIIb), differentially expressed in some of the craniofacial bones and cartilages. Thus, excessive FGF10 may perturb signal transduction of the FGF-FGFR, leading to craniofacial skeletal abnormalities in FGF10 Tg mice.
Insights
Overexpression of fibroblast growth factor 10 (FGF10) in mice caused craniofacial skeletal abnormalities. This suggests FGF10-FGFR signaling disruption impacts craniofacial development.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- Fibroblast growth factor receptor (FGFR) mutations are linked to craniosynostosis and chondrodysplasia.
- FGF10 is crucial for epithelial-mesenchymal interactions and chondrogenesis.
- FGF10-FGFR signaling is potentially involved in craniofacial skeletogenesis.
Purpose of the Study:
- To investigate the in vivo role of FGF10 in craniofacial skeletogenesis.
- To determine the effects of FGF10 overexpression on craniofacial development.
Main Methods:
- Utilized a tet-on doxycycline-inducible transgenic mouse model (FGF10 Tg) for FGF10 overexpression.
- Administered doxycycline from embryonic day 12.5 to induce Fgf10 expression.
- Analyzed craniofacial morphology and chondrogenesis in FGF10 Tg mice.
Main Results:
- FGF10 Tg mice showed significant craniofacial anomalies, including short rostrum/mandible, cleft palate, and absent tympanic ring.
- Observed region-specific effects on chondrogenesis: hyperplasia in the nasal septum and hypoplasia in the mandibular condyle.
- Identified a soluble FGFR2-IIIb (sFGFR2-IIIb) splice variant potentially modulating FGF signaling.
Conclusions:
- Excessive FGF10 disrupts FGF-FGFR signal transduction, leading to craniofacial skeletal abnormalities.
- FGF10 plays a critical role in regulating craniofacial skeletal development.
- The findings highlight the complex interplay of FGF signaling in skeletal morphogenesis.

