Pseudoachondroplasia and multiple epiphyseal dysplasia: Mutation review, molecular interactions, and genotype to phenotype correlations

Michael D. Briggs, Kathryn L. Chapman

    Research output: Contribution to journalArticlepeer-review

    Abstract

    Pseudoachondroplasia (PSACH) and multiple epiphyseal dysplasia (MED) constitute a bone dysplasia family, which is both genetically and phenotypically heterogeneous. The disease spectrum ranges from mild MED, which manifests with pain and stiffness in the joints and delayed and irregular ossification of the epiphyses, to the more severe PSACH, which is characterized by marked short stature, deformity of the legs, and ligamentous laxity. PSACH is almost exclusively caused by mutations in cartilage oligomeric matrix protein (COMP) whereas various forms of MED are caused by mutations in the genes encoding COMP, type IX collagen (COL9A1, COL9A2, and COL9A3), matrilin-3 (MATN3), and solute carrier member 26, member 2 gene (SLC26A2). In this review we discuss specific disease-causing mutations and the clustering of these mutations in functionally and structurally important regions of the respective gene products, genotype to phenotype correlations, and the diagnostic relevance of mutation screening in these osteochondrodysplasias. © 2002 Wiley-Liss, Inc.
    Original languageEnglish
    Pages (from-to)465-478
    Number of pages13
    JournalHuman Mutation
    Volume19
    Issue number5
    DOIs
    Publication statusPublished - 2002

    Keywords

    • Cartilage oligomeric matrix protein
    • COL9
    • COMP
    • Genotype-phenotype correlation
    • MATN3
    • Matrilin-3
    • MED
    • Multiple epiphyseal dysplasia
    • Mutation analysis
    • PSACH
    • Pseudoachondroplasia
    • SLC26A2
    • Solute carrier member 26, member 2
    • Type IX collagen

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