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Updated: Apr 21, 2026

Implementing Patch Clamp and Live Fluorescence Microscopy to Monitor Functional Properties of Freshly Isolated PKD Epithelium
Published on: September 1, 2015
Altered trafficking and stability of polycystins underlie polycystic kidney disease
Insights
Autosomal dominant polycystic kidney disease (ADPKD) arises from PKD1 mutations. Cleavage of polycystin-1 (PC1) is essential for its cilia transport and ADPKD pathogenesis, requiring polycystin-2 (PC2) interaction.
Area of Science:
- Molecular biology
- Genetics
- Cell biology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a severe genetic disorder.
- Mutations in the PKD1 gene, encoding polycystin-1 (PC1), cause the most severe ADPKD forms.
- The function of missense mutations in PKD1 remains unclear, impacting disease understanding.
Purpose of the Study:
- To investigate the role of PC1 autoproteolytic cleavage at the G protein-coupled receptor proteolytic site (GPS) in PC1 trafficking.
- To evaluate the impact of missense mutations in PKD1 and PC2 on protein localization and function.
- To establish a framework for assessing the pathogenicity of polycystin missense variants.
Main Methods:
- Development of a cell-based system to assess PC1 mutations.
- Utilizing a Pkd1-BAC recombineering approach to create murine models.
- Analysis of protein trafficking, cleavage, and interaction using genetic and cellular assays.
Main Results:
- GPS cleavage of PC1 is critical for its trafficking to cilia.
- Certain pathogenic missense mutations prevent PC1 cilia transport independent of GPS cleavage.
- PC1 requires interaction with PC2 for steady-state expression of its C-terminal fragment.
- A PC2 mutation was identified that impairs its cilia trafficking.
Conclusions:
- PC1 trafficking to cilia necessitates GPS cleavage.
- PC1 expression relies on interaction with PC2.
- This study provides a functional assay system to categorize missense mutations in polycystins, aiding ADPKD research.
Abstract:
The most severe form of autosomal dominant polycystic kidney disease occurs in patients with mutations in the gene (PKD1) encoding polycystin-1 (PC1). PC1 is a complex polytopic membrane protein expressed in cilia that undergoes autoproteolytic cleavage at a G protein-coupled receptor proteolytic site (GPS). A quarter of PKD1 mutations are missense variants, though it is not clear how these mutations promote disease. Here, we established a cell-based system to evaluate these mutations and determined that GPS cleavage is required for PC1 trafficking to cilia. A common feature among a subset of pathogenic missense mutations is a resulting failure of PC1 to traffic to cilia regardless of GPS cleavage. The application of our system also identified a missense mutation in the gene encoding polycystin-2 (PC2) that prevented this protein from properly trafficking to cilia. Using a Pkd1-BAC recombineering approach, we developed murine models to study the effects of these mutations and confirmed that only the cleaved form of PC1 exits the ER and can rescue the embryonically lethal Pkd1-null mutation. Additionally, steady-state expression levels of the intramembranous COOH-terminal fragment of cleaved PC1 required an intact interaction with PC2. The results of this study demonstrate that PC1 trafficking and expression require GPS cleavage and PC2 interaction, respectively, and provide a framework for functional assays to categorize the effects of missense mutations in polycystins.
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