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Mutation associated with Crouzon syndrome causes ligand-independent dimerization and activation of FGF receptor-2
K Mangasarian1, Y Li, A Mansukhani
1Department of Microbiology, New York University School of Medicine, NY 10016, USA.
Abstract:
FGF signaling is clearly important for proper bone development, and several autosomally dominant forms of genetic bone disorders have been mapped to FGF receptors 1, 2, and 3. We have studied the biological effects of the most commonly mutated cysteine residue in FGFR-2 which is detected in individuals with Crouzon syndrome, an autosomally dominant trait which causes premature fusion of the skull bones (craniosynostosis). This Crouzon mutation replaces the cysteine at position 342 with tyrosine, thus disrupting the formation of the third immunoglobulin (Ig)-like loop in the extracellular portion of the receptor. By transfecting mutated and wild-type receptors into a variety of cell lines, we have shown that the C342Y mutation in FGFR-2 produces a receptor which is constitutively activated and capable of transforming NIH3T3 cells and preventing the differentiation of C2 myoblasts in the absence of ligand. Constitutive activation appears to result from the ability of this receptor to form stable interreceptor dimers which involve disulfide bonds between the remaining free cysteine in the mutant receptor. The altered conformation of the third Ig-like domain in the mutated receptor also results in a drastically reduced ability to bind FGF-1 or FGF-2 and in a reduced level of receptor glycosylation. Thus it appears that Crouzon syndrome results from constitutive activation of FGFR-2 and that uncontrolled FGF signaling produces alterations of intramembranous bone development and premature closing of cranial sutures.
Insights
The Crouzon syndrome mutation in FGFR-2 causes constitutive receptor activation, leading to uncontrolled FGF signaling and abnormal bone development. This genetic mutation disrupts skull bone growth, causing craniosynostosis.
Area of Science:
- Molecular Biology
- Genetics
- Developmental Biology
Background:
- Fibroblast Growth Factor (FGF) signaling is crucial for bone development.
- Genetic mutations in FGF receptors (FGFRs) are linked to bone disorders.
- Crouzon syndrome, characterized by craniosynostosis, is an autosomal dominant trait.
Purpose of the Study:
- Investigate the biological effects of the C342Y mutation in FGFR-2, commonly found in Crouzon syndrome.
- Elucidate the mechanism by which this mutation leads to craniosynostosis.
Main Methods:
- Transfection of mutated (C342Y) and wild-type FGFR-2 into various cell lines (NIH3T3, C2 myoblasts).
- Assessed receptor activation, cellular transformation, and myoblast differentiation.
- Analyzed receptor dimerization, ligand binding affinity (FGF-1, FGF-2), and glycosylation levels.
Main Results:
- The C342Y mutation in FGFR-2 results in a constitutively active receptor.
- Mutant FGFR-2 transforms NIH3T3 cells and inhibits C2 myoblast differentiation without ligand.
- Constitutive activation stems from stable interreceptor disulfide-bonded dimers.
- Altered receptor conformation reduces FGF binding and glycosylation.
Conclusions:
- Crouzon syndrome is caused by the constitutive activation of FGFR-2.
- Uncontrolled FGF signaling due to this mutation disrupts intramembranous bone development.
- Premature fusion of cranial sutures in Crouzon syndrome is a consequence of aberrant FGF signaling.