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Updated: Jun 10, 2026

Evaluation of Planar-Cell-Polarity Phenotypes in Ciliopathy Mouse Mutant Cochlea
Published on: February 21, 2016
The retinitis pigmentosa protein RP2 interacts with polycystin 2 and regulates cilia-mediated vertebrate development
Toby Hurd1, Weibin Zhou, Paul Jenkins
1Department of Pediatrics and Communicable Diseases, University of Michigan, 1150 West Medical Center Drive, Ann Arbor, MI 48109, USA. whurd@umich.edu
Abstract:
Ciliopathies represent a growing group of human genetic diseases whose etiology lies in defects in ciliogenesis or ciliary function. Given the established entity of renal-retinal ciliopathies, we have been examining the role of cilia-localized proteins mutated in retinitis pigmentosa (RP) in regulating renal ciliogenesis or cilia-dependent signaling cascades. Specifically, this study examines the role of the RP2 gene product with an emphasis on renal and vertebrate development. We demonstrate that in renal epithelia, RP2 localizes to the primary cilium through dual acylation of the amino-terminus. We also show that RP2 forms a calcium-sensitive complex with the autosomal dominant polycystic kidney disease protein polycystin 2. Ablation of RP2 by shRNA promotes swelling of the cilia tip that may be a result of aberrant trafficking of polycystin 2 and other ciliary proteins. Morpholino-mediated repression of RP2 expression in zebrafish results in multiple developmental defects that have been previously associated with ciliary dysfunction, such as hydrocephalus, kidney cysts and situs inversus. Finally, we demonstrate that, in addition to our observed physical interaction between RP2 and polycystin 2, dual morpholino-mediated knockdown of polycystin 2 and RP2 results in enhanced situs inversus, indicating that these two genes also regulate a common developmental process. This work suggests that RP2 may be an important regulator of ciliary function through its association with polycystin 2 and provides evidence of a further link between retinal and renal cilia function.
Insights
RP2 protein, mutated in retinitis pigmentosa, localizes to kidney cilia and interacts with polycystin 2. Its absence causes developmental defects, linking retinal and renal ciliopathies.
Area of Science:
- Molecular Biology
- Genetics
- Developmental Biology
Background:
- Ciliopathies are genetic disorders arising from defects in cilia.
- Renal-retinal ciliopathies link kidney and eye conditions.
- Proteins mutated in retinitis pigmentosa (RP) are investigated for roles in kidney cilia.
Purpose of the Study:
- To investigate the role of the RP2 gene product in renal ciliogenesis and cilia-dependent signaling.
- To explore the connection between RP2 and kidney development.
- To examine the link between RP2 and polycystin 2 in renal-retinal ciliopathies.
Main Methods:
- Localization of RP2 in renal epithelia.
- Biochemical assays to study RP2 complex formation with polycystin 2.
- shRNA-mediated ablation of RP2 in kidney cells.
- Morpholino-induced knockdown of RP2 in zebrafish.
Main Results:
- RP2 localizes to primary cilia in renal epithelia via N-terminal acylation.
- RP2 forms a calcium-sensitive complex with polycystin 2.
- RP2 deficiency leads to cilia tip swelling and aberrant protein trafficking.
- Zebrafish lacking RP2 exhibit developmental defects including hydrocephalus, kidney cysts, and situs inversus.
- Combined knockdown of RP2 and polycystin 2 exacerbates situs inversus.
Conclusions:
- RP2 is a crucial regulator of ciliary function, potentially through its interaction with polycystin 2.
- This study establishes a significant link between RP2 function in retinal ciliopathies and renal development.
- The findings highlight a shared pathway for RP2 and polycystin 2 in vertebrate development.
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