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Imaging of Skeletal Disorders Caused by Fibroblast Growth Factor Receptor Gene Mutations
Kiran M Sargar1, Achint K Singh1, Simon C Kao1
1From the Mallinckrodt Institute of Radiology, Washington University School of Medicine, 510 S Kingshighway Blvd, Campus Box 8131, St Louis, MO 63110 (K.M.S.); Department of Radiology, University of Texas Health Science Center San Antonio, San Antonio, Tex (A.K.S.); and Department of Radiology, University of Iowa College of Medicine, Iowa City, Iowa (S.C.K.).
Abstract:
Fibroblast growth factors and fibroblast growth factor receptors (FGFRs) play important roles in human axial and craniofacial skeletal development. FGFR1, FGFR2, and FGFR3 are crucial for both chondrogenesis and osteogenesis. Mutations in the genes encoding FGFRs, types 1-3, are responsible for various skeletal dysplasias and craniosynostosis syndromes. Many of these disorders are relatively common in the pediatric population, and diagnosis is often challenging. These skeletal disorders can be classified based on which FGFR is affected. Skeletal disorders caused by type 1 mutations include Pfeiffer syndrome (PS) and osteoglophonic dysplasia, and disorders caused by type 2 mutations include Crouzon syndrome (CS), Apert syndrome (AS), and PS. Disorders caused by type 3 mutations include achondroplasia, hypochondroplasia, thanatophoric dysplasia (TD), severe achondroplasia with developmental delay and acanthosis nigricans, Crouzonodermoskeletal syndrome, and Muenke syndrome. Most of these mutations are inherited in an autosomal dominant fashion and are gain-of-function-type mutations. Imaging plays a key role in the evaluation of these skeletal disorders. Knowledge of the characteristic imaging and clinical findings can help confirm the correct diagnosis and guide the appropriate molecular genetic tests. Some characteristics and clinical findings include premature fusion of cranial sutures and deviated broad thumbs and toes in PS; premature fusion of cranial sutures and syndactyly of the hands and feet in AS; craniosynostosis, ocular proptosis, and absence of hand and foot abnormalities in CS; rhizomelic limb shortening, caudal narrowing of the lumbar interpediculate distance, small and square iliac wings, and trident hands in achondroplasia; and micromelia, bowing of the femora, and platyspondyly in TD. ©RSNA, 2017.
Insights
Fibroblast growth factor receptors (FGFRs) are vital for skeletal development. Mutations in FGFR1-3 cause skeletal dysplasias and craniosynostosis syndromes, often diagnosed using imaging and clinical findings.
Area of Science:
- Genetics and Developmental Biology
- Skeletal Biology
- Medical Imaging
Background:
- Fibroblast growth factors and their receptors (FGFRs) are critical for human axial and craniofacial skeletal development.
- FGFR1, FGFR2, and FGFR3 are essential for both chondrogenesis and osteogenesis.
- Mutations in FGFR genes lead to skeletal dysplasias and craniosynostosis syndromes, frequently seen in pediatric populations and posing diagnostic challenges.
Purpose of the Study:
- To classify skeletal disorders based on affected FGFR type.
- To highlight the role of imaging in diagnosing FGFR-related skeletal conditions.
- To correlate specific clinical and imaging findings with distinct syndromes.
Main Methods:
- Classification of skeletal disorders by affected FGFR type (1, 2, or 3).
- Review of characteristic clinical features associated with specific FGFR mutations.
- Emphasis on the diagnostic utility of medical imaging in identifying these conditions.
Main Results:
- FGFR1 mutations are linked to Pfeiffer syndrome and osteoglophonic dysplasia.
- FGFR2 mutations are associated with Crouzon syndrome, Apert syndrome, and Pfeiffer syndrome.
- FGFR3 mutations are implicated in achondroplasia, hypochondroplasia, thanatophoric dysplasia, and Muenke syndrome, among others.
Conclusions:
- Accurate diagnosis of FGFR-related skeletal disorders relies on understanding characteristic clinical and imaging findings.
- Imaging plays a pivotal role in confirming diagnoses and guiding molecular genetic testing.
- These gain-of-function mutations are typically inherited in an autosomal dominant manner.
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