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Updated: Jan 27, 2026

High-speed Video Microscopy Analysis for First-line Diagnosis of Primary Ciliary Dyskinesia
Published on: January 19, 2022
Axonemal localization of the dynein component DNAH5 is not altered in secondary ciliary dyskinesia
Heike Olbrich1, Judit Horváth, Andrea Fekete
1Department of Pediatrics and Adolescent Medicine, University Hospital, Freiburg, Germany.
Abstract:
Primary ciliary dyskinesia (PCD) is a heterogeneous genetic disorder characterized by recurrent airway infections and situs inversus in half of affected individuals. Diagnosis currently relies on demonstration of abnormal ciliary ultrastructure or altered ciliary beat. Alterations encountered in secondary ciliary dyskinesia (SCD) caused by inflammation often complicate the diagnostic workup. We have recently shown that in respiratory epithelial cells from PCD patients with outer dynein arm defects the dynein protein DNAH5 is mislocalized and either completely or partially absent from the ciliary axoneme. In this study, we addressed the question whether SCD might affect axonemal DNAH5 localization in respiratory cells. To induce SCD in vitro, we treated primary human respiratory epithelial cell cultures with interleukin-13 (IL-13). Ciliary function and ultrastructure were assessed by high-speed videomicroscopy and transmission electron microscopy, respectively. For in vivo localization of DNAH5, we performed nasal brushing biopsies in patients with evidence of SCD. Expression of DNAH5 was analyzed by immunofluorescence microscopy. IL-13-treated cells showed evidence of SCD. Ciliary beat frequency was significantly reduced and ultrastructural analyses showed axonemal disorganization compared with control cells. High-resolution immunofluorescence studies of respiratory epithelial cells with SCD identified in vitro and in vivo normal axonemal DNAH5 localization. DNAH5 localization is not altered by SCD, indicating a high potential for immunofluorescence analysis as a novel diagnostic tool in PCD.
Insights
Secondary ciliary dyskinesia (SCD) does not affect DNAH5 protein localization in respiratory cells. This finding supports using immunofluorescence analysis as a novel diagnostic tool for primary ciliary dyskinesia (PCD).
Area of Science:
- Cell Biology
- Genetics
- Respiratory Medicine
Background:
- Primary ciliary dyskinesia (PCD) is a genetic disorder causing recurrent airway infections.
- Current PCD diagnosis relies on ciliary function and ultrastructure, often complicated by secondary ciliary dyskinesia (SCD) from inflammation.
- Previous research showed DNAH5 mislocalization in PCD with outer dynein arm defects.
Purpose of the Study:
- To investigate whether SCD affects the localization of the DNAH5 protein in respiratory cells.
- To determine if DNAH5 localization can be a reliable diagnostic marker for PCD, independent of inflammatory influences.
Main Methods:
- Induced SCD in vitro using interleukin-13 (IL-13) on human respiratory epithelial cells.
- Assessed ciliary function via high-speed videomicroscopy and ultrastructure via transmission electron microscopy.
- Analyzed in vivo DNAH5 localization in nasal biopsies from SCD patients using immunofluorescence microscopy.
Main Results:
- IL-13 treated cells exhibited characteristics of SCD, including reduced ciliary beat frequency and axonemal disorganization.
- Immunofluorescence studies revealed normal axonemal DNAH5 localization in respiratory cells with SCD, both in vitro and in vivo.
- SCD does not alter DNAH5 localization within the ciliary axoneme.
Conclusions:
- Axonemal DNAH5 localization remains unaffected by secondary ciliary dyskinesia.
- Immunofluorescence analysis of DNAH5 localization shows potential as a novel diagnostic method for primary ciliary dyskinesia.
- This technique could help differentiate PCD from inflammatory conditions affecting ciliary function.
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