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Published on: August 15, 2019
Missense Variants in the Second Transmembrane Domain of TMEM17 Disrupt Its Stability and Function and Lead to a Wide
Lucile Boutaud1,2, Chunmei Li3,4, Candice Moncler1
1INSERM UMR 1163, Institut Imagine, Université Paris Cité, Paris, France.
Abstract:
Ciliopathies are rare genetic disorders characterized by significant genetic and phenotypic variability. Over 140 proteins localized to primary cilia, which are sensory organelles essential for vertebrate development, are implicated. TMEM17 encodes a transmembrane protein at the ciliary transition zone and was previously proposed as a potential ciliopathy gene, based on reports of individuals from two families with orofaciodigital syndrome type 6 (OFD6) and Joubert syndrome (JS). Here, we report two unrelated fetuses with occipital encephalocele, polydactyly, and kidney cysts, in whom exome sequencing identified a founder homozygous missense variant (Arg94Trp) in TMEM17, affecting a highly conserved residue. This expands the TMEM17-associated phenotypic spectrum to include Meckel syndrome (MKS). Comprehensive functional analyses of all known TMEM17 variants, using patient tissues/cells and a C. elegans model system, demonstrate a loss-of-function mechanism. Our study reveals severe functional consequences, including TMEM17 destabilization and mislocalization, anomalies in cilium composition and function, and abrogation of Sonic Hedgehog signaling. These experiments confirm the pathogenicity of all TMEM17 variants and underscore its essential role at the ciliary transition zone. Collectively, our findings establish TMEM17 as a bona fide ciliopathy gene, associated with a wide phenotypic spectrum ranging from viable syndromes (OFD6 and JS) to a fetal-lethal condition (MKS).
Insights
TMEM17 is a ciliopathy gene essential for primary cilia function. This study confirms its role in Meckel syndrome, expanding the known spectrum of TMEM17-associated genetic disorders.
Area of Science:
- Genetics
- Cell Biology
- Developmental Biology
Background:
- Ciliopathies are rare genetic disorders affecting primary cilia, essential sensory organelles.
- Over 140 proteins are implicated, with TMEM17 previously suggested as a potential ciliopathy gene.
- TMEM17 encodes a transmembrane protein at the ciliary transition zone.
Purpose of the Study:
- To investigate the role of TMEM17 in ciliopathies.
- To expand the phenotypic spectrum associated with TMEM17 variants.
- To elucidate the functional consequences of TMEM17 mutations.
Main Methods:
- Exome sequencing identified TMEM17 variants in affected fetuses.
- Functional analyses were performed using patient tissues/cells and a C. elegans model.
- Assessed TMEM17 protein stability, localization, and Sonic Hedgehog signaling.
Main Results:
- A founder homozygous missense variant (Arg94Trp) in TMEM17 was identified in fetuses with occipital encephalocele, polydactyly, and kidney cysts, expanding the phenotype to include Meckel syndrome.
- All known TMEM17 variants demonstrated a loss-of-function mechanism.
- Mutations caused TMEM17 destabilization, mislocalization, ciliary dysfunction, and abrogated Sonic Hedgehog signaling.
Conclusions:
- TMEM17 is a bona fide ciliopathy gene.
- TMEM17 variants are associated with a wide phenotypic spectrum, including orofaciodigital syndrome type 6, Joubert syndrome, and Meckel syndrome.
- The findings underscore TMEM17's critical role at the ciliary transition zone.
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