A model for the pharmacological treatment of crouzon syndrome
Chad A Perlyn1, Gillian Morriss-Kay, Tron Darvann
1Division of Plastic Surgery and Department of Molecular Biology and Pharmacology, Washington University School of Medicine, St. Louis, Missouri 63110, USA. cperlyn@molecool.wustl.edu
Objective:
Crouzon syndrome is caused by mutations in fibroblast growth factor receptor 2 (FGFR2) leading to constitutive activation of receptors in the absence of ligand binding. The syndrome is characterized by premature fusion of the cranial sutures that leads to abnormal cranium shape, restricted brain growth, and increased intracranial pressure. Surgical remodeling of the cranial vault is currently used to treat affected infants. The purpose of this study was to develop a pharmacological strategy using tyrosine kinase inhibition as a novel treatment for craniosynostotic syndromes caused by constitutive FGFR activation.
Methods:
Characterization of cranial suture fusion in Fgfr2 mutant mice, which carry the most common Crouzon mutation, was performed using micro-computed tomographic analysis from embryogenesis through maturation. Whole calvarial cultures from wild-type and Fgfr2 mice were established and cultured for 2 weeks in the presence of dimethyl sulfoxide control or PD173074, an FGFR tyrosine kinase inhibitor. Paraffin sections were prepared to show suture morphology and calcium deposition.
Results:
In untreated Fgfr2 cultures, the coronal suture fused bilaterally with loss of overlap between the frontal bone and parietal bone. Calvaria treated with PD173074 (2 micromol/L) showed patency of the coronal suture and were without evidence of any synostosis.
Conclusion:
We report the successful use of PD173074 to prevent in vitro suture fusion in a model for Crouzon syndrome. Further studies are underway to develop an in vivo treatment protocol as a novel therapeutic modality for FGFR associated craniosynostotic syndromes.
Insights
This study explored a new treatment for Crouzon syndrome, a condition causing premature skull fusion. A tyrosine kinase inhibitor, PD173074, successfully prevented skull suture fusion in laboratory models, offering hope for a novel therapy.
Area of Science:
- Craniofacial development and genetic disorders.
- Pharmacological interventions for skeletal dysplasias.
Background:
- Crouzon syndrome results from fibroblast growth factor receptor 2 (FGFR2) mutations, causing abnormal cranial suture fusion.
- Current treatments involve surgical remodeling, with a need for novel therapeutic strategies.
- Constitutive FGFR activation underlies craniosynostotic syndromes.
Purpose of the Study:
- To develop a pharmacological treatment for craniosynostotic syndromes.
- To investigate tyrosine kinase inhibition as a therapy for Crouzon syndrome.
- To target constitutive FGFR activation.
Main Methods:
- Micro-computed tomographic analysis of Fgfr2 mutant mice to characterize cranial suture fusion.
- In vitro culture of whole calvaria from wild-type and Fgfr2 mice.
- Treatment of calvarial cultures with PD173074, an FGFR tyrosine kinase inhibitor, or a dimethyl sulfoxide control.
Main Results:
- Untreated Fgfr2 cultures exhibited bilateral coronal suture fusion.
- Calvaria treated with PD173074 demonstrated patent coronal sutures, preventing synostosis.
- Micro-CT analysis confirmed the efficacy of the inhibitor in preventing fusion.
Conclusions:
- PD173074 effectively prevented in vitro suture fusion in a Crouzon syndrome model.
- This study demonstrates the potential of tyrosine kinase inhibition as a therapeutic approach.
- Further in vivo studies are planned to develop a treatment protocol for FGFR-associated craniosynostotic syndromes.
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