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Published on: February 14, 2016
Kinesin-2 mediates physical and functional interactions between polycystin-2 and fibrocystin
Yuliang Wu1, Xiao-Qing Dai, Qiang Li
1Membrane Protein Research Group, Department of Physiology, University of Alberta, Edmonton, Alberta, Canada.
Insights
Kinesin-2 links polycystin-2 (PC2) and fibrocystin/polyductin (FPC), revealing a molecular connection between autosomal dominant and recessive polycystic kidney diseases (ADPKD and ARPKD). This interaction is crucial for regulating PC2 channel function.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) and autosomal recessive polycystic kidney disease (ARPKD) are genetic kidney disorders with distinct genetic causes (PKD1/PKK2 for ADPKD, PKHD1 for ARPKD).
- A molecular link connecting these two forms of polycystic kidney disease (PKD) has not been previously established.
- Polycystin-2 (PC2) and fibrocystin/polyductin (FPC) are key proteins involved in ADPKD and ARPKD, respectively.
Purpose of the Study:
- To investigate potential molecular interactions between PC2 and FPC.
- To identify molecular components that mediate interactions between PC2 and FPC.
- To elucidate the functional consequences of these interactions on PC2 channel activity.
Main Methods:
- Yeast two-hybrid and biochemical assays to detect protein associations.
- Co-immunoprecipitation experiments in cell lines (MDCK, IMCD) and human kidney tissue.
- In vitro binding, Far Western blot, and electrophysiology (planar lipid bilayer) to assess direct interactions and functional modulation.
- Immunofluorescence microscopy to determine subcellular localization.
- Manipulation of KIF3B levels via overexpression and siRNA.
Main Results:
- Kinesin-2 motor subunit KIF3B associates with both PC2 and FPC.
- PC2, FPC, and KIF3B form endogenous complexes in kidney cells and tissue, with KIF3B acting as a linker.
- KIF3B mediates the functional regulation of PC2 channel activity by FPC, significantly enhancing channel activity when both are present.
Conclusions:
- Kinesin-2 (KIF3B) serves as a molecular bridge connecting PC2 and FPC.
- This interaction reveals a novel molecular pathway common to both ADPKD and ARPKD.
- The findings provide a foundation for understanding shared pathomechanisms in different polycystic kidney disease genotypes.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is caused by mutations in PKD1, encoding polycystin-1 (PC1), or PKD2 (polycystin-2, PC2). Autosomal recessive PKD (ARPKD) is caused by mutations in PKHD1, encoding fibrocystin/polyductin (FPC). No molecular link between ADPKD and ARPKD has been determined. Here, we demonstrated, by yeast two-hybrid and biochemical assays, that KIF3B, a motor subunit of kinesin-2, associates with PC2 and FPC. Co-immunoprecipitation experiments using Madin-Darby canine kidney (MDCK) and inner medullary collecting duct (IMCD) cells and human kidney revealed that PC2 and KIF3B, FPC and KIF3B and, furthermore, PC2 and FPC are endogenously in the same complex(es), though no direct association between the PC2 and FPC intracellular termini was detected. In vitro binding and Far Western blot experiments demonstrated that PC2 and FPC are in the same complex only if KIF3B is present, presumably by forming a PC2-KIF3B-FPC complex. This was supported by our observation that altering KIF3B level in IMCD cells by over-expression or siRNA significantly affected complexing between PC2 and FPC. Immunofluorescence experiments showed that PC2, FPC and KIF3B partially co-localized in primary cilia of over-confluent and perinuclear regions of sub-confluent cells. Furthermore, KIF3B mediated functional modulation of purified PC2 channels by FPC in a planer lipid bilayer electrophysiology system. The FPC C-terminus substantially stimulated PC2 channel activity in the presence of KIF3B, whereas FPC or KIF3B alone had no effect. Taken together, we discovered that kinesin-2 is a linker between PC2 and FPC and mediates the regulation of PC2 channel function by FPC. Our study may be important for elucidating common molecular pathways for PKD of different genotypes.
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