Literature DB >> 28965847

Hypomorphic Recessive Variants in SUFU Impair the Sonic Hedgehog Pathway and Cause Joubert Syndrome with Cranio-facial and Skeletal Defects.

Roberta De Mori1, Marta Romani2, Stefano D'Arrigo3, Maha S Zaki4, Elisa Lorefice5, Silvia Tardivo5, Tommaso Biagini6, Valentina Stanley7, Damir Musaev7, Joel Fluss8, Alessia Micalizzi1, Sara Nuovo9, Barbara Illi10, Luisa Chiapparini11, Lucia Di Marcotullio12, Mahmoud Y Issa4, Danila Anello5, Antonella Casella5, Monia Ginevrino13, Autumn Sa'na Leggins7, Susanne Roosing14, Romina Alfonsi12, Jessica Rosati15, Rachel Schot16, Grazia Maria Simonetta Mancini16, Enrico Bertini17, William B Dobyns18, Tommaso Mazza6, Joseph G Gleeson7, Enza Maria Valente19.   

Abstract

The Sonic Hedgehog (SHH) pathway is a key signaling pathway orchestrating embryonic development, mainly of the CNS and limbs. In vertebrates, SHH signaling is mediated by the primary cilium, and genetic defects affecting either SHH pathway members or ciliary proteins cause a spectrum of developmental disorders. SUFU is the main negative regulator of the SHH pathway and is essential during development. Indeed, Sufu knock-out is lethal in mice, and recessive pathogenic variants of this gene have never been reported in humans. Through whole-exome sequencing in subjects with Joubert syndrome, we identified four children from two unrelated families carrying homozygous missense variants in SUFU. The children presented congenital ataxia and cerebellar vermis hypoplasia with elongated superior cerebellar peduncles (mild "molar tooth sign"), typical cranio-facial dysmorphisms (hypertelorism, depressed nasal bridge, frontal bossing), and postaxial polydactyly. Two siblings also showed polymicrogyria. Molecular dynamics simulation predicted random movements of the mutated residues, with loss of the native enveloping movement of the binding site around its ligand GLI3. Functional studies on cellular models and fibroblasts showed that both variants significantly reduced SUFU stability and its capacity to bind GLI3 and promote its cleavage into the repressor form GLI3R. In turn, this impaired SUFU-mediated repression of the SHH pathway, as shown by altered expression levels of several target genes. We demonstrate that germline hypomorphic variants of SUFU cause deregulation of SHH signaling, resulting in recessive developmental defects of the CNS and limbs which share features with both SHH-related disorders and ciliopathies.
Copyright © 2017 American Society of Human Genetics. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  GLI3; Joubert syndrome; SUFU; Sonic Hedgehog; ciliopathies; congenital ataxia; developmental defects; hypomorphic variants; molar tooth sign; polymicrogyria

Mesh:

Substances:

Year:  2017        PMID: 28965847      PMCID: PMC5630196          DOI: 10.1016/j.ajhg.2017.08.017

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


  56 in total

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