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Updated: May 10, 2026

Isolation of Whole Cell Protein Lysates from Mouse Facial Processes and Cultured Palatal Mesenchyme Cells for Phosphoprotein Analysis
Published on: April 1, 2022
Type 1 fibroblast growth factor receptor in cranial neural crest cell-derived mesenchyme is required for
Cong Wang1, Julia Yu Fong Chang, Chaofeng Yang
1College of Pharmacy, Wenzhou Medical College, Wenzhou, Zhejiang 325000, China.
Insights
Fibroblast growth factor receptor 1 (FGFR1) in neural crest cells is crucial for proper palate development. Loss of FGFR1 in these cells causes cleft palate and other craniofacial defects by disrupting cell signaling and proliferation.
Area of Science:
- Developmental biology
- Craniofacial development
- Molecular signaling
Background:
- Cleft palate is a common congenital defect.
- Fibroblast Growth Factor (FGF) signaling is vital for palatogenesis.
- FGFR1 is expressed in cranial neural crest (CNC)-derived palate mesenchyme, but its role is unclear.
Purpose of the Study:
- To investigate the role of FGFR1 in CNC cells during palatogenesis.
- To elucidate the mechanisms by which FGFR1 regulates palate development.
Main Methods:
- Utilized Wnt1(Cre) to specifically delete Fgfr1 in neural crest cells.
- Analyzed craniofacial defects, cell patterning, proliferation, and palate fusion in knockout models.
Main Results:
- Deletion of Fgfr1 in CNC cells resulted in cleft palate, cleft lip, and severe craniofacial abnormalities.
- Loss of FGFR1 did not affect CNC cell patterning but disrupted frontofacial signaling.
- FGFR1 deficiency led to delayed cell proliferation and impaired palate shelf elevation and fusion.
Conclusions:
- FGFR1 signaling in CNC cells is essential for regulating palatogenesis.
- This study provides the first evidence of FGF signaling's role in CNC cells during palate development.
Abstract:
Cleft palate is a common congenital birth defect. The fibroblast growth factor (FGF) family has been shown to be important for palatogenesis, which elicits the regulatory functions by activating the FGF receptor tyrosine kinase. Mutations in Fgf or Fgfr are associated with cleft palate. To date, most mechanistic studies on FGF signaling in palate development have focused on FGFR2 in the epithelium. Although Fgfr1 is expressed in the cranial neural crest (CNC)-derived palate mesenchyme and Fgfr1 mutations are associated with palate defects, how FGFR1 in palate mesenchyme regulates palatogenesis is not well understood. Here, we reported that by using Wnt1(Cre) to delete Fgfr1 in neural crest cells led to cleft palate, cleft lip, and other severe craniofacial defects. Detailed analyses revealed that loss-of-function mutations in Fgfr1 did not abrogate patterning of CNC cells in palate shelves. However, it upset cell signaling in the frontofacial areas, delayed cell proliferation in both epithelial and mesenchymal compartments, prevented palate shelf elevation, and compromised palate shelf fusion. This is the first report revealing how FGF signaling in CNC cells regulates palatogenesis.
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