WNK3 positively regulates epithelial calcium channels TRPV5 and TRPV6 via a kinase-dependent pathway
Wei Zhang1, Tao Na, Ji-Bin Peng
1Nephrology Research and Training Center, Division of Nephrology, Department of Medicine, University of Alabama at Birmingham, ZRB 625, 1900 University Blvd., Birmingham, AL 35294-0006, USA.
Abstract:
WNK3, a member of the With No Lysine (K) family of protein serine/threonine kinases, was shown to regulate members of the SLC12A family of cation-chloride cotransporters and the renal outer medullary K+ channel ROMK and Cl(-) channel SLC26A9. To evaluate the effect of WNK3 on TRPV5, a renal epithelial Ca2+ channel that serves as a gatekeeper for active Ca2+ reabsorption, WNK3 and TRPV5 were coexpressed in Xenopus laevis oocytes and the function and expression of TRPV5 were subsequently examined. An 82.7 +/- 7.1% increase in TRPV5-mediated Ca2+ uptake was observed when WNK3 was coexpressed. A similar increase in TRPV5-mediated Na+ current was observed with the voltage-clamp technique. WNK3 also enhanced Ca2+ influx and Na+ current mediated by TRPV6, which is the closest homolog of TRPV5 that mediates active intestinal Ca2+ absorption. The kinase domain of WNK3 alone was sufficient to increase TRPV5-mediated Ca2+ transport, and the positive regulatory effect was abolished by the kinase-inactive D294A mutation in WNK3, indicating a kinase-dependent mechanism. The complexly glycosylated TRPV5 that appears at the plasma membrane was increased by WNK3. The exocytosis of TRPV5 was increased by WNK3, and the effect of WNK3 on TRPV5 was abolished by the microtubule inhibitor colchicine. The increased plasma membrane expression of TRPV5 was likely due to the enhanced delivery of mature TRPV5 to the plasma membrane from its intracellular pool via the secretory pathway. These results indicate that WNK3 is a positive regulator of the transcellular Ca2+ transport pathway.
Insights
With No Lysine 3 (WNK3) kinase enhances calcium reabsorption by increasing TRPV5 channel activity. This WNK3 regulation of TRPV5 involves increased channel delivery to the cell surface.
Area of Science:
- Molecular Biology
- Renal Physiology
- Ion Channel Regulation
Background:
- With No Lysine 3 (WNK3) kinase is known to regulate ion transporters.
- Transient Receptor Potential Vanilloid 5 (TRPV5) is a key renal calcium channel.
- The regulatory mechanisms of TRPV5 function remain incompletely understood.
Purpose of the Study:
- To investigate the effect of WNK3 on the function and expression of the renal calcium channel TRPV5.
- To elucidate the mechanism by which WNK3 influences TRPV5-mediated calcium transport.
Main Methods:
- Coexpression of WNK3 and TRPV5 in Xenopus laevis oocytes.
- Measurement of TRPV5-mediated calcium uptake and sodium current using electrophysiology (voltage-clamp).
- Analysis of TRPV5 expression at the plasma membrane and the role of intracellular trafficking.
Main Results:
- WNK3 significantly increased TRPV5-mediated calcium uptake and sodium current.
- WNK3 also enhanced calcium influx and sodium current mediated by the related TRPV6 channel.
- WNK3 increased the plasma membrane expression of TRPV5, likely via enhanced exocytosis and delivery through the secretory pathway.
- The kinase activity of WNK3 was essential for its positive regulatory effect on TRPV5.
Conclusions:
- WNK3 acts as a positive regulator of TRPV5 channel activity.
- WNK3 enhances transcellular calcium transport by promoting TRPV5 surface expression.
- The kinase-dependent regulation of TRPV5 by WNK3 involves modulation of the secretory pathway.
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