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Evaluation of Planar-Cell-Polarity Phenotypes in Ciliopathy Mouse Mutant Cochlea
Published on: February 21, 2016
A novel hypomorphic allele of Spag17 causes primary ciliary dyskinesia phenotypes in mice
Zakia Abdelhamed1,2, Marshall Lukacs1,3, Sandra Cindric4
1Division of Human Genetics, Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229, USA.
Abstract:
Primary ciliary dyskinesia (PCD) is a human condition of dysfunctional motile cilia characterized by recurrent lung infection, infertility, organ laterality defects and partially penetrant hydrocephalus. We recovered a mouse mutant from a forward genetic screen that developed many of the hallmark phenotypes of PCD. Whole-exome sequencing identified this primary ciliary dyskinesia only (Pcdo) allele to be a nonsense mutation (c.5236A>T) in the Spag17 coding sequence creating a premature stop codon (K1746*). The Pcdo variant abolished several isoforms of SPAG17 in the Pcdo mutant testis but not in the brain. Our data indicate differential requirements for SPAG17 in different types of motile cilia. SPAG17 is essential for proper development of the sperm flagellum and is required for either development or stability of the C1 microtubule structure within the central pair apparatus of the respiratory motile cilia, but not the brain ependymal cilia. We identified changes in ependymal ciliary beating frequency, but these did not appear to alter lateral ventricle cerebrospinal fluid flow. Aqueductal stenosis resulted in significantly slower and abnormally directed cerebrospinal fluid flow, and we suggest that this is the root cause of the hydrocephalus. The Spag17 homozygous mutant mice are generally viable to adulthood but have a significantly shortened lifespan, with chronic morbidity. Our data indicate that the c.5236A>T Pcdo variant is a hypomorphic allele of Spag17 that causes phenotypes related to motile, but not primary, cilia. Spag17 is a useful new model for elucidating the molecular mechanisms underlying central pair PCD pathogenesis in the mouse.This article has an associated First Person interview with the first author of the paper.
Insights
A mouse model with a SPAG17 mutation, mimicking primary ciliary dyskinesia (PCD), reveals SPAG17
Area of Science:
- Genetics
- Cell Biology
- Developmental Biology
Background:
- Primary ciliary dyskinesia (PCD) is a genetic disorder affecting motile cilia, leading to recurrent infections and infertility.
- Mouse models are crucial for understanding complex human genetic disorders like PCD.
Purpose of the Study:
- To investigate the role of SPAG17 in motile cilia function and PCD pathogenesis.
- To characterize a novel mouse mutant exhibiting PCD-like phenotypes.
Main Methods:
- Forward genetic screen to identify PCD-related mutations.
- Whole-exome sequencing to pinpoint the causative mutation in SPAG17.
- Analysis of SPAG17 expression and ciliary structure in mutant mice.
Main Results:
- A nonsense mutation in SPAG17 (Pcdo allele) was identified, causing loss of SPAG17 isoforms in testes.
- The mutation impaired sperm flagellum development and respiratory cilia central pair structure.
- Hydrocephalus in mutants was linked to aqueductal stenosis and altered cerebrospinal fluid flow.
Conclusions:
- SPAG17 plays differential roles in various motile cilia types.
- The Pcdo mouse model is valuable for studying central pair PCD mechanisms.
- SPAG17 dysfunction contributes to PCD phenotypes including hydrocephalus.

