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Updated: Jun 6, 2026

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Calcium-sensing receptor decreases cell surface expression of the inwardly rectifying K+ channel Kir4.1
Seung-Kuy Cha1, Chunfa Huang, Yaxian Ding
1Department of Medicine, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
Abstract:
The Ca(2+)-sensing receptor (CaR) regulates salt and water transport in the kidney as demonstrated by the association of gain of function CaR mutations with a Bartter syndrome-like, salt-wasting phenotype, but the precise mechanism for this effect is not fully established. We found previously that the CaR interacts with and inactivates an inwardly rectifying K(+) channel, Kir4.1, which is expressed in the distal nephron that contributes to the basolateral K(+) conductance, and in which loss of function mutations are associated with a complex phenotype that includes renal salt wasting. We now find that CaR inactivates Kir4.1 by reducing its cell surface expression. Mutant CaRs reduced Kir4.1 cell surface expression and current density in HEK-293 cells in proportion to their signaling activity. Mutant, activated Gα(q) reduced cell surface expression and current density of Kir4.1, and these effects were blocked by RGS4, a protein that blocks signaling via Gα(i) and Gα(q). Other α subunits had insignificant effects. Knockdown of caveolin-1 blocked the effect of Gα(q) on Kir4.1, whereas knockdown of the clathrin heavy chain had no effect. CaR had no comparable effect on the renal outer medullary K(+) channel, an apical membrane distal nephron K(+) channel that is internalized by clathrin-coated vesicles. Co-immunoprecipitation studies showed that the CaR and Kir4.1 physically associate with caveolin-1 in HEK cells and in kidney extracts. Thus, the CaR decreases cell surface expression of Kir4.1 channels via a mechanism that involves Gα(q) and caveolin. These results provide a novel molecular basis for the inhibition of renal NaCl transport by the CaR.
Insights
The calcium-sensing receptor (CaR) reduces kidney salt reabsorption by decreasing cell surface expression of the Kir4.1 potassium channel, involving Gα(q) and caveolin. This reveals a new mechanism for CaR
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- The calcium-sensing receptor (CaR) influences kidney salt and water transport.
- CaR mutations are linked to salt-wasting conditions like Bartter syndrome.
- CaR inactivation of Kir4.1 channels in the distal nephron is a known interaction, but the mechanism is unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which the CaR reduces Kir4.1 channel activity.
- To investigate the role of G protein signaling and protein trafficking in CaR-mediated regulation of Kir4.1.
Main Methods:
- HEK-293 cell transfections with wild-type and mutant CaR, Gα(q), and Kir4.1.
- Measurement of Kir4.1 cell surface expression and current density.
- Knockdown studies targeting caveolin-1 and clathrin heavy chain.
- Co-immunoprecipitation assays using HEK cells and kidney extracts.
Main Results:
- Mutant CaRs reduced Kir4.1 cell surface expression and current density proportionally to signaling activity.
- Activated Gα(q) mimicked the effect of mutant CaR on Kir4.1, an effect blocked by RGS4.
- Knockdown of caveolin-1, but not clathrin, prevented Gα(q)-mediated reduction of Kir4.1.
- CaR and Kir4.1 were found to associate with caveolin-1 in HEK cells and kidney tissue.
Conclusions:
- The CaR decreases cell surface expression of Kir4.1 channels through a Gα(q)- and caveolin-dependent mechanism.
- This study provides a novel molecular explanation for CaR's inhibition of renal NaCl transport.
- The findings highlight the importance of protein trafficking in regulating ion channel function in the kidney.
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