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BICC1 Interacts with PKD1 and PKD2 to Drive Cystogenesis in ADPKD
Insights
The RNA-binding molecule BICC1 interacts with PKD1 and PKD2 proteins, influencing autosomal dominant polycystic kidney disease (ADPKD) severity. Variants in BICC1 can worsen ADPKD, suggesting a role for RNA metabolism in disease modification.
Area of Science:
- Genetics
- Molecular Biology
- Nephrology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) typically presents in adulthood, caused by mutations in PKD1 or PKD2.
- However, variable disease expression includes very early-onset presentations, suggesting other genetic factors may influence severity.
Purpose of the Study:
- To investigate the functional interaction between BICC1, PKD1, and PKD2 in the context of ADPKD.
- To determine if BICC1 variants contribute to the pathogenesis or variable expression of ADPKD.
Main Methods:
- Biochemical assays to assess BICC1 protein interactions.
- Loss-of-function studies in Xenopus and mouse models.
- Genetic association studies in a large ADPKD cohort.
- Genome editing in human kidney cells.
Main Results:
- BICC1 physically binds to Polycystin-1 and Polycystin-2.
- Depletion of BICC1 exacerbates PKD in animal models, especially when combined with Pkd1 or Pkd2 loss.
- Homozygous and compound heterozygous BICC1 variants were identified in patients with very early-onset ADPKD, often in conjunction with PKD1/PKD2 variants.
- Identified BICC1 variants were hypomorphic and affected disease-relevant signaling pathways.
Conclusions:
- BICC1 functionally cooperates with PKD1 and PKD2 in kidney development and function.
- BICC1 variants can aggravate ADPKD severity, particularly in very early-onset cases.
- RNA metabolism represents a novel therapeutic target for modifying ADPKD progression.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is primarily of adult-onset and caused by pathogenic variants in PKD1 or PKD2 . Yet, disease expression is highly variable and includes very early-onset PKD presentations in utero or infancy. In animal models, the RNA-binding molecule Bicc1 has been shown to play a crucial role in the pathogenesis of PKD. To study the interaction between BICC1, PKD1 and PKD2 we combined biochemical approaches, knockout studies in mice and Xenopus, genetic engineered human kidney cells carrying BICC1 variants as well as genetic association studies in a large ADPKD cohort. We first demonstrated that BICC1 physically binds to the proteins Polycystin-1 and -2 encoded by PKD1 and PKD2 via distinct protein domains. Furthermore, PKD was aggravated in loss-of-function studies in Xenopus and mouse models resulting in more severe disease when Bicc1 was depleted in conjunction with Pkd1 or Pkd2 . Finally, in a large human patient cohort, we identified a sibling pair with a homozygous BICC1 variant and patients with very early onset PKD (VEO-PKD) that exhibited compound heterozygosity of BICC1 in conjunction with PKD1 and PKD2 variants. Genome editing demonstrated that these BICC1 variants were hypomorphic in nature and impacted disease-relevant signaling pathways. These findings support the hypothesis that BICC1 cooperates functionally with PKD1 and PKD2, and that BICC1 variants may aggravate PKD severity highlighting RNA metabolism as an important new concept for disease modification in ADPKD.
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