IFT74 variants cause skeletal ciliopathy and motile cilia defects in mice and humans

Author:

Bakey Zeineb,Cabrera Oscar A.,Hoefele Julia,Antony Dinu,Wu Kaman,Stuck Michael W.,Micha Dimitra,Eguether Thibaut,Smith Abigail O.,van der Wel Nicole N.,Wagner Matias,Strittmatter Lara,Beales Philip L.,Jonassen Julie A.,Thiffault IsabelleORCID,Cadieux-Dion Maxime,Boyes Laura,Sharif Saba,Tüysüz Beyhan,Dunstheimer Desiree,Niessen Hans W. M.,Devine William,Lo Cecilia W.,Mitchison Hannah M.,Schmidts Miriam,Pazour Gregory J.ORCID

Abstract

Motile and non-motile cilia play critical roles in mammalian development and health. These organelles are composed of a 1000 or more unique proteins, but their assembly depends entirely on proteins synthesized in the cell body and transported into the cilium by intraflagellar transport (IFT). In mammals, malfunction of non-motile cilia due to IFT dysfunction results in complex developmental phenotypes that affect most organs. In contrast, disruption of motile cilia function causes subfertility, disruption of the left-right body axis, and recurrent airway infections with progressive lung damage. In this work, we characterize allele specific phenotypes resulting from IFT74 dysfunction in human and mice. We identified two families carrying a deletion encompassing IFT74 exon 2, the first coding exon, resulting in a protein lacking the first 40 amino acids and two individuals carrying biallelic splice site mutations. Homozygous exon 2 deletion cases presented a ciliary chondrodysplasia with narrow thorax and progressive growth retardation along with a mucociliary clearance disorder phenotype with severely shorted cilia. Splice site variants resulted in a lethal skeletal chondrodysplasia phenotype. In mice, removal of the first 40 amino acids likewise results in a motile cilia phenotype but with little effect on primary cilia structure. Mice carrying this allele are born alive but are growth restricted and developed hydrocephaly in the first month of life. In contrast, a strong, likely null, allele of Ift74 in mouse completely blocks ciliary assembly and causes severe heart defects and midgestational lethality. In vitro studies suggest that the first 40 amino acids of IFT74 are dispensable for binding of other IFT subunits but are important for tubulin binding. Higher demands on tubulin transport in motile cilia compared to primary cilia resulting from increased mechanical stress and repair needs could account for the motile cilia phenotype observed in human and mice.

Funder

H2020 European Research Council

Deutsche Forschungsgemeinschaft

Germany’s Excellence Strategy

National Institutes of Health

Publisher

Public Library of Science (PLoS)

Subject

Cancer Research,Genetics (clinical),Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

Reference65 articles.

1. The primary cilium as the cell’s antenna: signaling at a sensory organelle;V Singla;Science,2006

2. Genes and molecular pathways underpinning ciliopathies;JF Reiter;Nat Rev Mol Cell Biol,2017

3. When cilia go bad: cilia defects and ciliopathies;M Fliegauf;Nat Rev Mol Cell Biol,2007

4. Ciliopathies.;DA Braun;Cold Spring Harb Perspect Biol,2017

5. Diagnosis and management of primary ciliary dyskinesia;JS Lucas;Archives of disease in childhood,2014

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