Related Experiment Video
Updated: Jul 18, 2026

Study of the Functions and Activities of Neuronal K-Cl Co-Transporter KCC2 Using Western Blotting
Published on: December 9, 2022
WNK4 kinase is a negative regulator of K+-Cl- cotransporters
Tomas Garzón-Muvdi1, Diana Pacheco-Alvarez, Kenneth B E Gagnon
1Molecular Physiology Unit, Vasco de Quiroga No. 15, Tlalpan 14000, México City, México.
Abstract:
WNK kinases [with no lysine (K) kinase] are emerging as regulators of several membrane transport proteins in which WNKs act as molecular switches that coordinate the activity of several players. Members of the cation-coupled chloride cotransporters family (solute carrier family number 12) are one of the main targets. WNK3 activates the Na(+)-driven cotransporters NCC, NKCC1, and NKCC2 and inhibits the K(+)-driven cotransporters KCC1 to KCC4. WNK4 inhibits the activity of NCC and NKCC1, while in the presence of the STE20-related proline-alanine-rich kinase SPAK activates NKCC1. Nothing is known, however, regarding the effect of WNK4 on the K(+)-Cl(-) cotransporters. Using the heterologous expression system of Xenopus laevis oocytes, here we show that WNK4 inhibits the activity of the K(+)-Cl(-) cotransporters KCC1, KCC3, and KCC4 under cell swelling, a condition in which these cotransporters are maximally active. The effect of WNK4 requires its catalytic activity because it was lost by the substitution of aspartate 318 for alanine (WNK4-D318A) that renders WNK4 catalytically inactive. In contrast, three different WNK4 missense mutations that cause pseudohypoaldosteronism type II do not affect the WNK4-induced inhibition of KCC4. Finally, we observed that catalytically inactive WNK4-D318A is able to bypass the tonicity requirements for KCC2 and KCC3 activation in isotonic conditions. This effect is enhanced by the presence of catalytically inactive SPAK, was prevented by the presence of protein phosphatase inhibitors, and was not present in KCC1 and KCC4. Our results reveal that WNK4 regulates the activity of the K(+)-Cl(-) cotransporters expressed in the kidney.
Insights
WNK4 kinase inhibits kidney K(+)-Cl(-) cotransporters KCC1, KCC3, and KCC4. Its catalytic activity is required for this regulation, revealing new insights into WNK4
Area of Science:
- Molecular Biology
- Cell Physiology
- Renal Transport
Background:
- WNK kinases (with no lysine [K] kinases) regulate membrane transport proteins, acting as molecular switches.
- Cation-coupled chloride cotransporters (SLC12 family) are key targets, with WNK3 and WNK4 having known effects on some transporters.
- The precise role of WNK4 in regulating K(+)-Cl(-) cotransporters (KCCs) remained largely unknown.
Purpose of the Study:
- To investigate the effect of WNK4 on the activity of K(+)-Cl(-) cotransporters (KCC1-KCC4).
- To determine the requirement of WNK4 catalytic activity and specific mutations for KCC regulation.
- To explore the interaction of WNK4 with SPAK and its impact on KCC activation under varying tonicity.
Main Methods:
- Heterologous expression system using Xenopus laevis oocytes.
- Functional assays measuring KCC activity under conditions of cell swelling and isotonicity.
- Site-directed mutagenesis to create catalytically inactive WNK4 (WNK4-D318A) and disease-associated mutants.
Main Results:
- WNK4 significantly inhibits the activity of KCC1, KCC3, and KCC4, particularly under cell swelling.
- WNK4's inhibitory effect on KCCs requires its catalytic activity; the WNK4-D318A mutant lost this function.
- Catalytically inactive WNK4-D318A, but not WNK1 or WNK4, bypassed tonicity requirements for KCC2 and KCC3 activation, an effect modulated by SPAK and phosphatases.
Conclusions:
- WNK4 acts as a direct inhibitor of kidney K(+)-Cl(-) cotransporters KCC1, KCC3, and KCC4.
- The catalytic activity of WNK4 is essential for its inhibitory function on KCCs.
- WNK4 plays a significant role in regulating renal chloride transport through its modulation of KCC activity.
Related Concept Videos
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...
Primary Active Transport
Primary Active Transport
Non-gated Ion Channels
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Active Transport
Primary active transporters, like Na+, K+ and -ATPase, directly utilize ATP to move ions across the membrane. These transporters play significant roles in various physiological processes. For instance, Na+, K+ and -ATPase maintain...
Inhibition of Cdk Activity

