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RESEARCH PRODUCT

Yunis-Varón Syndrome Is Caused by Mutations in FIG4, Encoding a Phosphoinositide Phosphatase

James T. LuMarina MoraHeiko ReutterMiriam H. MeislerLaurence FaivreLindsay C. BurrageYangjin BaeAnneke T. Vulto-van SilfhoutJorge Román Corona-riveraEric HaanBrendan LeeBrendan LeePeter D. TurnpennyLucia MorandiGuy M. LenkPhilippe M. CampeauRichard A. Gibbs

subject

GenotypePhosphataseMicrognathismMolecular Sequence DataLimb Deformities CongenitalMutation MissenseBiologyCompound heterozygositymedicine.disease_causeFrameshift mutation03 medical and health sciencesMice0302 clinical medicinePhosphatidylinositol PhosphatesEctodermal DysplasiaReportmedicineGeneticsMissense mutationAnimalsHumansExomeGenetic Predisposition to DiseaseGenetics(clinical)Yunis–Varon syndromeFrameshift MutationGenetics (clinical)030304 developmental biology0303 health sciencesMutationBone DevelopmentBase SequenceFlavoproteinsNeurodegenerationSequence Analysis DNAFibroblastsmedicine.diseaseMolecular biologyPhenotypePhosphoric Monoester HydrolasesCleidocranial Dysplasia030217 neurology & neurosurgery

description

Yunis-Varón syndrome (YVS) is an autosomal-recessive disorder with cleidocranial dysplasia, digital anomalies, and severe neurological involvement. Enlarged vacuoles are found in neurons, muscle, and cartilage. By whole-exome sequencing, we identified frameshift and missense mutations of FIG4 in affected individuals from three unrelated families. FIG4 encodes a phosphoinositide phosphatase required for regulation of PI(3,5)P(2) levels, and thus endosomal trafficking and autophagy. In a functional assay, both missense substitutions failed to correct the vacuolar phenotype of Fig4-null mouse fibroblasts. Homozygous Fig4-null mice exhibit features of YVS, including neurodegeneration and enlarged vacuoles in neurons. We demonstrate that Fig4-null mice also have small skeletons with reduced trabecular bone volume and cortical thickness and that cultured osteoblasts accumulate large vacuoles. Our findings demonstrate that homozygosity or compound heterozygosity for null mutations of FIG4 is responsible for YVS, the most severe known human phenotype caused by defective phosphoinositide metabolism. In contrast, in Charcot-Marie-Tooth disease type 4J (also caused by FIG4 mutations), one of the FIG4 alleles is hypomorphic and disease is limited to the peripheral nervous system. This genotype-phenotype correlation demonstrates that absence of FIG4 activity leads to central nervous system dysfunction and extensive skeletal anomalies. Our results describe a role for PI(3,5)P(2) signaling in skeletal development and maintenance.

10.1016/j.ajhg.2013.03.020http://dx.doi.org/10.1016/j.ajhg.2013.03.020