ArticleEuropean journal of human genetics : EJHG2025
A homozygous frameshift variant in the CILK1 gene causes cranioectodermal dysplasia.
Article in European journal of human genetics : EJHG, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 4 papers.
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Who cites it
4 citing papers in PubMed.
- Biallelic SLC20A2 loss-of-function in severe early-onset neurodevelopmental disorder with brain calcification.Journal of human genetics · 2026Article
- Multi-Level Genomic and Computational Analyses Identify a Novel IFT122 Variant Associated With Cranioectodermal Dysplasia 1 in a Consanguineous Saudi Family.Molecular genetics & genomic medicine · 2026Article
- IFT43-Related Cranioectodermal Dysplasia Type 3: Clinical and Molecular Insights from the First Reported Turkish Patient.Molecular syndromology · 2026Article
- Uncertainty, ethics, and progress in genomic medicine.European journal of human genetics : EJHG · 2025Article
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14 authors.
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Abstract
Cranioectodermal dysplasia (CED) is a ciliopathy characterized by skeletal and ectodermal abnormalities, renal failure, and liver fibrosis. Pathogenic variants in genes that encode the intraflagellar transport (IFT) complex components, particularly IFT-A, are responsible for approximately two-thirds of the CED cases. However, the cause of the remaining cases remains unknown. Ciliogenesis-associated kinase 1 (CILK1) is a highly conserved ciliary serine/threonine kinase with an N-terminal catalytic domain responsible for kinase activity and a C-terminal non-catalytic domain that interacts with the IFT-B complex. Biallelic variants in the catalytic domain are associated with lethal skeletal dysplasia, endocrine cerebroosteodysplasia, and short-rib polydactyly syndrome. No human disease has been linked to biallelic variants in the non-catalytic domain. We present a homozygous frameshift variant in the CILK1 gene that affects the distal part of the non-catalytic domain, causing CED in five patients from two pedigrees. All the patients survived into childhood and had disproportionately short stature, skeletal abnormalities, ectodermal dysplasia, renal issues, and liver complications. Functional data from patient-derived cells and the C. elegans model indicate that the variant reduces cilia number, increases cilia length, and disrupts the localization of IFT components. In contrast, the ciliary localization of CILK1 bearing the variant itself remains unaffected. Notably, we rescued the majority of these abnormalities by reintroducing CILK1 into patient-derived cells. Finally, our study describes CILK1 as a novel causal gene and the first non-IFT protein-encoding gene in the etiology of CED, thus expanding the known genotypic, mechanistic, and phenotypic spectrum of CED.
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