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A Novel CLCN5 Mutation Associated With Focal Segmental Glomerulosclerosis and Podocyte Injury
Ashish K Solanki1, Ehtesham Arif1, Thomas Morinelli2
1Department of Medicine, Nephrology Division, Medical University of South Carolina, Charleston, South Carolina, USA.
Introduction:
Tubular dysfunction is characteristic of Dent's disease; however, focal segmental glomerulosclerosis (FSGS) can also be present. Glomerulosclerosis could be secondary to tubular injury, but it remains uncertain whether the CLCN5 gene, which encodes an endosomal chloride and/or hydrogen exchanger, plays a role in podocyte biology. Here, we implicate a role for CLCN5 in podocyte function and pathophysiology.
Methods:
Whole exome capture and sequencing of the proband and 5 maternally-related family members was conducted to identify X-linked mutations associated with biopsy-proven FSGS. Human podocyte cultures were used to characterize the mutant phenotype on podocyte function.
Results:
We identified a novel mutation (L521F) in CLCN5 in 2 members of a Hispanic family who presented with a histologic diagnosis of FSGS and low-molecular-weight proteinuria without hypercalciuria. Presence of CLCN5 was confirmed in cultured human podocytes. Podocytes transfected with the wild-type or the mutant (L521F) CLCN5 constructs showed differential localization. CLCN5 knockdown in podocytes resulted in defective transferrin endocytosis and was associated with decreased cell proliferation and increased cell migration, which are hallmarks of podocyte injury.
Conclusions:
The CLCN5 mutation, which causes Dent's disease, may be associated with FSGS without hyercalcuria and nepthrolithiasis. The present findings supported the hypothesis that CLCN5 participates in protein trafficking in podocytes and plays a critical role in organizing the components of the podocyte slit diaphragm to help maintain normal cell physiology and a functional filtration barrier. In addition to tubular dysfunction, mutations in CLCN5 may also lead to podocyte dysfunction, which results in a histologic picture of FSGS that may be a primary event and not a consequence of tubular damage.
Insights
Mutations in the CLCN5 gene, linked to Dent's disease, can cause focal segmental glomerulosclerosis (FSGS) by impairing podocyte function. This suggests CLCN5 is crucial for maintaining kidney filtration barriers.
Area of Science:
- Nephrology
- Genetics
- Cell Biology
Background:
- Dent's disease typically involves tubular dysfunction, but focal segmental glomerulosclerosis (FSGS) can also occur.
- The role of the CLCN5 gene, an endosomal chloride exchanger, in podocyte biology and FSGS pathogenesis was previously uncertain.
Purpose of the Study:
- To investigate the role of CLCN5 in podocyte function and its potential contribution to FSGS.
- To identify genetic mutations associated with FSGS in a family with suspected X-linked inheritance.
Main Methods:
- Whole exome sequencing was performed on family members presenting with biopsy-proven FSGS.
- Human podocyte cultures were utilized to characterize the functional impact of identified CLCN5 mutations.
Main Results:
- A novel CLCN5 mutation (L521F) was identified in family members with FSGS and low-molecular-weight proteinuria, but without hypercalciuria.
- CLCN5 knockdown in podocytes led to impaired transferrin endocytosis, reduced proliferation, and increased migration, indicating podocyte injury.
Conclusions:
- CLCN5 mutations may cause FSGS, even without hypercalciuria or nephrolithiasis, suggesting a primary role in podocyte dysfunction.
- CLCN5 is critical for protein trafficking in podocytes, organizing the slit diaphragm, and maintaining kidney filtration barrier integrity.
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