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.

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.

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