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Immuno-fluorescent Labeling of Microtubules and Centrosomal Proteins in Ex Vivo Intestinal Tissue and 3D In Vitro Intestinal Organoids
Published on: December 13, 2017
Human IFT52 mutations uncover a novel role for the protein in microtubule dynamics and centrosome cohesion
Marie Alice Dupont1,2, Camille Humbert1,2, Céline Huber3,4,2
1Laboratory of Hereditary Kidney Diseases, INSERM, Paris, France.
Abstract:
Mutations in genes encoding components of the intraflagellar transport (IFT) complexes have previously been associated with a spectrum of diseases collectively termed ciliopathies. Ciliopathies relate to defects in the formation or function of the cilium, a sensory or motile organelle present on the surface of most cell types. IFT52 is a key component of the IFT-B complex and ensures the interaction of the two subcomplexes, IFT-B1 and IFT-B2. Here, we report novel IFT52 biallelic mutations in cases with a short-rib thoracic dysplasia (SRTD) or a congenital anomaly of kidney and urinary tract (CAKUT). Combining in vitro and in vivo studies in zebrafish, we showed that SRTD-associated missense mutation impairs IFT-B complex assembly and IFT-B2 ciliary localization, resulting in decreased cilia length. In comparison, CAKUT-associated missense mutation has a mild pathogenicity, thus explaining the lack of skeletal defects in CAKUT case. In parallel, we demonstrated that the previously reported homozygous nonsense IFT52 mutation associated with Sensenbrenner syndrome [Girisha et al. (2016) A homozygous nonsense variant in IFT52 is associated with a human skeletal ciliopathy. Clin. Genet., 90, 536-539] leads to exon skipping and results in a partially functional protein. Finally, our work uncovered a novel role for IFT52 in microtubule network regulation. We showed that IFT52 interacts and partially co-localized with centrin at the distal end of centrioles where it is involved in its recruitment and/or maintenance. Alteration of this function likely contributes to centriole splitting observed in Ift52-/- cells. Altogether, our findings allow a better comprehensive genotype-phenotype correlation among IFT52-related cases and revealed a novel, extra-ciliary role for IFT52, i.e. disruption may contribute to pathophysiological mechanisms.
Insights
Mutations in intraflagellar transport 52 (IFT52) cause ciliopathies like short-rib thoracic dysplasia. This study reveals new IFT52 mutations and a novel role in microtubule regulation, improving genotype-phenotype correlations.
Area of Science:
- Genetics
- Cell Biology
- Developmental Biology
Background:
- Ciliopathies are diseases linked to defects in cilia formation or function, often caused by mutations in intraflagellar transport (IFT) complex genes.
- IFT52 is crucial for the IFT-B complex, mediating interactions between its subcomplexes and essential for ciliary function.
Purpose of the Study:
- To investigate novel biallelic IFT52 mutations in patients with short-rib thoracic dysplasia (SRTD) and congenital anomalies of the kidney and urinary tract (CAKUT).
- To elucidate the functional consequences of IFT52 mutations on ciliary structure and function, and to explore potential extra-ciliary roles of IFT52.
Main Methods:
- In vitro and in vivo studies using zebrafish models.
- Analysis of patient-derived mutations, including missense and nonsense variants.
- Investigation of IFT52 interactions with other cellular components, such as centrin.
Main Results:
- Novel IFT52 mutations were identified in SRTD and CAKUT cases.
- SRTD-associated mutations impaired IFT-B complex assembly and ciliary localization, reducing cilia length.
- CAKUT-associated mutations showed milder pathogenicity. A previously reported nonsense mutation led to exon skipping and partial protein function.
- IFT52 was found to interact with centrin at centrioles, suggesting a role in microtubule network regulation and potentially contributing to centriole splitting.
Conclusions:
- Findings establish a clearer genotype-phenotype correlation for IFT52-related ciliopathies.
- A novel, extra-ciliary function of IFT52 in microtubule regulation and centriole maintenance was uncovered.
- IFT52 dysfunction contributes to diverse pathophysiological mechanisms beyond ciliary defects.
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