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DNAH11 Localization in the Proximal Region of Respiratory Cilia Defines Distinct Outer Dynein Arm Complexes
Gerard W Dougherty1, Niki T Loges1, Judith A Klinkenbusch1
11 Department of General Pediatrics and.
Abstract:
Primary ciliary dyskinesia (PCD) is a recessively inherited disease that leads to chronic respiratory disorders owing to impaired mucociliary clearance. Conventional transmission electron microscopy (TEM) is a diagnostic standard to identify ultrastructural defects in respiratory cilia but is not useful in approximately 30% of PCD cases, which have normal ciliary ultrastructure. DNAH11 mutations are a common cause of PCD with normal ciliary ultrastructure and hyperkinetic ciliary beating, but its pathophysiology remains poorly understood. We therefore characterized DNAH11 in human respiratory cilia by immunofluorescence microscopy (IFM) in the context of PCD. We used whole-exome and targeted next-generation sequence analysis as well as Sanger sequencing to identify and confirm eight novel loss-of-function DNAH11 mutations. We designed and validated a monoclonal antibody specific to DNAH11 and performed high-resolution IFM of both control and PCD-affected human respiratory cells, as well as samples from green fluorescent protein (GFP)-left-right dynein mice, to determine the ciliary localization of DNAH11. IFM analysis demonstrated native DNAH11 localization in only the proximal region of wild-type human respiratory cilia and loss of DNAH11 in individuals with PCD with certain loss-of-function DNAH11 mutations. GFP-left-right dynein mice confirmed proximal DNAH11 localization in tracheal cilia. DNAH11 retained proximal localization in respiratory cilia of individuals with PCD with distinct ultrastructural defects, such as the absence of outer dynein arms (ODAs). TEM tomography detected a partial reduction of ODAs in DNAH11-deficient cilia. DNAH11 mutations result in a subtle ODA defect in only the proximal region of respiratory cilia, which is detectable by IFM and TEM tomography.
Insights
Primary ciliary dyskinesia (PCD) is a genetic disorder affecting mucus clearance. Novel DNAH11 mutations cause PCD with normal ciliary structure, leading to subtle outer dynein arm defects detectable by advanced microscopy.
Area of Science:
- Genetics
- Cell Biology
- Respiratory Medicine
Background:
- Primary ciliary dyskinesia (PCD) causes chronic respiratory issues due to impaired mucociliary clearance.
- Standard electron microscopy misses defects in ~30% of PCD cases with normal ciliary ultrastructure.
- DNAH11 mutations are a known cause of PCD with normal ultrastructure but unclear pathophysiology.
Purpose of the Study:
- To characterize DNAH11's role and localization in human respiratory cilia in PCD.
- To investigate the ciliary defects caused by novel DNAH11 loss-of-function mutations.
Main Methods:
- Whole-exome, targeted next-generation sequencing, and Sanger sequencing identified novel DNAH11 mutations.
- A specific monoclonal antibody for DNAH11 was developed and validated.
- High-resolution immunofluorescence microscopy (IFM) and TEM tomography analyzed ciliary localization and structure in human cells and GFP-mouse models.
Main Results:
- Identified eight novel loss-of-function DNAH11 mutations.
- Demonstrated native DNAH11 localizes to the proximal region of human respiratory cilia.
- Observed loss of DNAH11 in PCD patients with specific mutations and a subtle outer dynein arm defect in the proximal ciliary region.
Conclusions:
- DNAH11 mutations cause PCD through subtle, proximally located outer dynein arm defects.
- Immunofluorescence microscopy and TEM tomography are crucial for diagnosing PCD cases with normal ultrastructure.
- This study clarifies the pathophysiology of DNAH11-associated PCD.
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