ArticleHuman molecular genetics2023
Defective airway intraflagellar transport underlies a combined motile and primary ciliopathy syndrome caused by IFT74 mutations.
Article in Human molecular genetics, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 8 citations in OpenAlex.
- Variants in CEP135 Cause Congenital Microcephaly and Primary Ciliary Dyskinesia.Pediatric pulmonology · 2026Article
- The Genetics of Primary Ciliary Dyskinesia - Advances and Limitations.Pediatric pulmonology · 2026Review
- ARMC2 loss impairs cilia structure and leads to primary ciliary dyskinesia symptoms in mouse organs.Frontiers in cell and developmental biology · 2026Article
- Primary ciliary dyskinesia phenotypes and correlation with genotype.Current opinion in pulmonary medicine · 2025Review
- The RNA splicing factor PRPF8 is required for left-right organiser cilia differentiation and determination of cardiac left-right asymmetry via regulation ofbioRxiv : the preprint server for biology · 2025Article
- The intraflagellar transport cycle.Nature reviews. Molecular cell biology · 2025Review
- Airway ciliary microenvironment responses in mice with primary ciliary dyskinesia and central pair apparatus defects.Scientific reports · 2024Article
- HomozygousZoological research · 2024Article
- Primary Ciliary Dyskinesia.Pediatrics · 2024Review
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Authors and funding
11 authors at 5 institutions in 5 countries.
Funding
Abstract
Ciliopathies are inherited disorders caused by defective cilia. Mutations affecting motile cilia usually cause the chronic muco-obstructive sinopulmonary disease primary ciliary dyskinesia (PCD) and are associated with laterality defects, while a broad spectrum of early developmental as well as degenerative syndromes arise from mutations affecting signalling of primary (non-motile) cilia. Cilia assembly and functioning requires intraflagellar transport (IFT) of cargos assisted by IFT-B and IFT-A adaptor complexes. Within IFT-B, the N-termini of partner proteins IFT74 and IFT81 govern tubulin transport to build the ciliary microtubular cytoskeleton. We detected a homozygous 3-kb intragenic IFT74 deletion removing the exon 2 initiation codon and 40 N-terminal amino acids in two affected siblings. Both had clinical features of PCD with bronchiectasis, but no laterality defects. They also had retinal dysplasia and abnormal bone growth, with a narrowed thorax and short ribs, shortened long bones and digits, and abnormal skull shape. This resembles short-rib thoracic dysplasia, a skeletal ciliopathy previously linked to IFT defects in primary cilia, not motile cilia. Ciliated nasal epithelial cells collected from affected individuals had reduced numbers of shortened motile cilia with disarranged microtubules, some misorientation of the basal feet, and disrupted cilia structural and IFT protein distributions. No full-length IFT74 was expressed, only truncated forms that were consistent with N-terminal deletion and inframe translation from downstream initiation codons. In affinity purification mass spectrometry, exon 2-deleted IFT74 initiated from the nearest inframe downstream methionine 41 still interacts as part of the IFT-B complex, but only with reduced interaction levels and not with all its usual IFT-B partners. We propose that this is a hypomorphic mutation with some residual protein function retained, which gives rise to a primary skeletal ciliopathy combined with defective motile cilia and PCD.
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