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Updated: May 14, 2026

Measuring Sperm Guidance and Motility within the Caenorhabditis elegans Hermaphrodite Reproductive Tract
Published on: June 6, 2019
Sperm-associated antigen-17 gene is essential for motile cilia function and neonatal survival
Maria Eugenia Teves1, Zhibing Zhang, Richard M Costanzo
1Department of Obstetrics and Gynecology, Virginia Commonwealth University, Richmond, VA 23298, USA.
Insights
Primary ciliary dyskinesia (PCD) is a genetic disorder affecting cilia. Loss of the Spag17 gene in mice caused severe respiratory issues and neonatal death due to impaired cilia function.
Area of Science:
- Cell Biology
- Genetics
- Respiratory Medicine
Background:
- Primary ciliary dyskinesia (PCD) arises from genetic defects in cilia, leading to varied symptoms like respiratory infections and infertility.
- Cilia are crucial for mucociliary clearance and possess a conserved
- 9 + 2
- axonemal structure.
Purpose of the Study:
- To investigate the function of the sperm-associated antigen-17 (Spag17) gene in motile cilia.
- To characterize the in vivo phenotype of Spag17 deficiency.
Main Methods:
- Generation of Spag17 knockout mice.
- Phenotypic analysis including respiratory function, mucus clearance, and ultrastructural examination of cilia.
- Biochemical analysis of associated central pair proteins.
Main Results:
- Spag17 knockout mice exhibited immotile nasal and tracheal cilia, leading to respiratory distress and neonatal death.
- Ultrastructural analysis revealed defects in the central pair microtubules of cilia.
- Increased levels of interacting proteins SPAG6 and SPAG16 were observed in Spag17-deficient mice.
Conclusions:
- Spag17 is essential for the structural integrity and function of motile cilia.
- Impaired mucociliary clearance due to Spag17 deficiency is the likely cause of neonatal lethality in mice.
Abstract:
Primary ciliary dyskinesia (PCD), resulting from defects in cilia assembly or motility, is caused by mutations in a number of genes encoding axonemal proteins. PCD phenotypes are variable, and include recurrent respiratory tract infections, bronchiectasis, hydrocephaly, situs inversus, and male infertility. We generated knockout mice for the sperm-associated antigen-17 (Spag17) gene, which encodes a central pair (CP) protein present in the axonemes of cells with "9 + 2" motile cilia or flagella. The targeting of Spag17 resulted in a severe phenotype characterized by immotile nasal and tracheal cilia, reduced clearance of nasal mucus, profound respiratory distress associated with lung fluid accumulation and disruption of the alveolar epithelium, cerebral ventricular expansion consistent with emerging hydrocephalus, failure to suckle, and neonatal demise within 12 hours of birth. Ultrastructural analysis revealed the loss of one CP microtubule in approximately one quarter of tracheal cilia axonemes, an absence of a C1 microtubule projection, and other less frequent CP structural abnormalities. SPAG6 and SPAG16 (CP proteins that interact with SPAG17) were increased in tracheal tissue from SPAG17-deficient mice. We conclude that Spag17 plays a critical role in the function and structure of motile cilia, and that neonatal lethality is likely explained by impaired airway mucociliary clearance.
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