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Updated: Aug 9, 2026

High-speed Video Microscopy Analysis for First-line Diagnosis of Primary Ciliary Dyskinesia
Published on: January 19, 2022
DNAH5 mutations are a common cause of primary ciliary dyskinesia with outer dynein arm defects
Nada Hornef1, Heike Olbrich, Judit Horvath
1Department of Pediatrics and Adolescent Medicine, Mathildenstrasse 1, 79106 Freiburg, Germany.
Rationale:
Primary ciliary dyskinesia (PCD) is characterized by recurrent airway infections and randomization of left-right body asymmetry. To date, autosomal recessive mutations have only been identified in a small number of patients involving DNAI1 and DNAH5, which encode outer dynein arm components.
Methods:
We screened 109 white PCD families originating from Europe and North America for presence of DNAH5 mutations by haplotype analyses and/or sequencing.
Results:
Haplotype analyses excluded linkage in 26 families. In 30 PCD families, we identified 33 novel (12 nonsense, 8 frameshift, 5 splicing, and 8 missense mutations) and two known DNAH5 mutations. We observed clustering of mutations within five exons harboring 27 mutant alleles (52%) of the 52 detected mutant alleles. Interestingly, 6 (32%) of 19 PCD families with DNAH5 mutations from North America carry the novel founder mutation 10815delT. Electron microscopic analyses in 22 patients with PCD with mutations invariably detected outer dynein arm ciliary defects. High-resolution immunofluorescence imaging of respiratory epithelial cells from eight patients with DNAH5 mutations showed mislocalization of mutant DNAH5 and accumulation at the microtubule organizing centers. Mutant DNAH5 was absent throughout the ciliary axoneme in seven patients and remained detectable in the proximal ciliary axoneme in one patient carrying compound heterozygous splicing mutations at the 3'-end (IVS75-2A>T, IVS76+5G>A). In a preselected subpopulation with documented outer dynein arm defects (n = 47), DNAH5 mutations were identified in 53% of patients.
Conclusions:
DNAH5 is frequently mutated in patients with PCD exhibiting outer dynein arm defects and mutations cluster in five exons.
Insights
Mutations in the DNAH5 gene are common in primary ciliary dyskinesia (PCD) patients with outer dynein arm defects. These DNAH5 mutations often cluster in specific gene regions, impacting ciliary function.
Area of Science:
- Genetics
- Cell Biology
- Respiratory Medicine
Background:
- Primary ciliary dyskinesia (PCD) causes recurrent infections and situs inversus.
- Autosomal recessive mutations in DNAI1 and DNAH5 are known causes of PCD.
- DNAH5 encodes a component of the outer dynein arm.
Purpose of the Study:
- To investigate the frequency and spectrum of DNAH5 mutations in PCD patients.
- To correlate DNAH5 mutations with ciliary ultrastructure defects.
Main Methods:
- Screening of 109 PCD families for DNAH5 mutations using haplotype analysis and sequencing.
- Electron microscopy and immunofluorescence imaging of respiratory cilia.
- Analysis of mutation distribution within the DNAH5 gene.
Main Results:
- DNAH5 mutations were identified in 30 out of 109 PCD families (27.5%).
- 33 novel and 2 known DNAH5 mutations were found, with mutations clustering in five exons.
- Ciliary defects, including outer dynein arm abnormalities, were consistently observed in patients with DNAH5 mutations.
Conclusions:
- DNAH5 is a frequently mutated gene in PCD patients with outer dynein arm defects.
- Mutation clustering in specific DNAH5 exons suggests potential hotspots.
- These findings highlight the importance of DNAH5 in ciliary function and PCD pathogenesis.
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