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Published on: March 10, 2012
Effect of pathogenic cysteine mutations on FGFR3 transmembrane domain dimerization in detergents and lipid bilayers
Min You1, Jamie Spangler, Edwin Li
1Department of Materials Science and Engineering, Johns Hopkins University, Baltimore, Maryland 21218, USA.
Abstract:
Mutations in fibroblast growth factor receptors are known as the genetic basis of skeletal growth disorders. The mechanism of pathogenesis, as determined by mutation-induced changes in receptor structure, interactions, and function, is elusive. Here we study three pathogenic Cys mutations, associated with either thanatophoric dysplasia or achondroplasia, in the TM domain of fibroblast growth factor receptors 3 (FGFR3). We characterize the dimerization propensities of the mutant TM domains in detergents and in lipid bilayers, in the presence and absence of reducing agents, and compare them to previous measurements of wild-type. We find that the Cys mutations increase the propensity for dimerization in detergent, with the Cys370 mutant exhibiting the highest propensity for disulfide bond formation, the Cys371 mutant having an intermediate propensity, and Cys375 the lowest. Thus, disulfide bonds readily form in detergents, with efficiency that correlates with the severity of the phenotype. In lipid bilayers, however, the Cys370 mutant, which dimerizes strongly in detergent, behaves as the wild-type, suggesting that Cys370-mediated disulfide bonds do not form between the isolated TM domains in bilayers. Thus, the nature of the hydrophobic environment plays an important role in defining the structure and flexibility of transmembrane dimers. These results and previous findings from cellular studies lead us to propose a conformational flexibility mechanism of receptor stabilization as a basis for disregulated FGFR3 signaling in thanatophoric dysplasia and achondroplasia.
Insights
Fibroblast growth factor receptor 3 (FGFR3) mutations cause skeletal disorders. Cysteine mutations in FGFR3
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Mutations in fibroblast growth factor receptors (FGFRs) underpin skeletal growth disorders.
- The precise pathogenic mechanisms involving altered receptor structure and function remain unclear.
Purpose of the Study:
- Investigate the dimerization propensity of three pathogenic cysteine (Cys) mutations in the transmembrane (TM) domain of fibroblast growth factor receptor 3 (FGFR3).
- Elucidate the role of the hydrophobic environment in TM domain dimerization and its implications for skeletal dysplasia pathogenesis.
Main Methods:
- Characterized dimerization of wild-type and mutant FGFR3 TM domains in detergent and lipid bilayers.
- Assessed dimerization in the presence and absence of reducing agents to evaluate disulfide bond formation.
- Compared dimerization propensities with disease phenotypes.
Main Results:
- Cys mutations increased TM domain dimerization in detergent.
- Disulfide bond formation efficiency correlated with disease severity (Cys370 > Cys371 > Cys375).
- In lipid bilayers, Cys370 mutant dimerization resembled wild-type, indicating environment-dependent disulfide bond formation.
Conclusions:
- The hydrophobic environment significantly influences transmembrane dimer structure and flexibility.
- Propose a conformational flexibility mechanism for receptor stabilization in FGFR3-related skeletal disorders like thanatophoric dysplasia and achondroplasia.
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