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May 28, 2026Biochemistry0 citations

Structural Basis for Potassium Inhibition of WNK Kinases

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EGElizabeth J. GoldsmithThe University of Texas Southwestern Medical CenterJPJohn M. PleinisUniversity of UtahAWArmin WagnerRutherford Appleton Laboratory

Key Points

  • This research investigates how potassium regulates WNK kinases through structural analysis.
  • Utilized crystallography and mutagenic analysis to probe potassium binding in WNK kinases.
  • Investigated unphosphorylated WNK1 crystals grown in cesium formate as a potassium surrogate.
  • Introduced mutations at specific amino acids to examine their effects on kinase activity.
  • Mutations in WNK1/E388 and WNK3/E314 showed reduced potassium inhibition while preserving kinase activity.
  • Other targeted mutations did not confirm potassium regulatory sites or resulted in inactive mutants.
  • Highlighting a common inhibitory mechanism, potassium, chloride, and water bind the same asymmetric dimer in WNK1.

Abstract

WNK kinases are chloride- and osmotic-stress-regulated protein kinases recently shown to be controlled by potassium. Prior studies demonstrated the direct binding of chloride and osmotic stress-related water in WNK kinase regulation. Here, we probe potassium binding and regulation of WNK kinases via crystallography coupled with mutagenic analysis of WNK kinase autophosphorylation and activity. Crystals of unphosphorylated WNK1 grown in cesium formate, a surrogate for potassium, yielded nonsulfur scattering peaks at 5.75 keV. Mutations were introduced into amino acids flanking the anomalous diffraction peaks. Mutations in WNK1/E388 and the corresponding WNK3/E314, probing a peak close to WNK1/I384, led to reduced inhibition by potassium while maintaining kinase autophosphorylation and substrate phosphorylation activity. Other peaks probed by mutagenesis either did not bear out as potassium regulatory sites or were not validated due to the inactivity of the mutants synthesized. Previously synthesized chloride- and water-binding mutants demonstrate correlated sensitivity to chloride and potassium. Potassium, chloride, and water are all WNK inhibitors that share a common mechanism binding the same low-activity asymmetric dimer of WNK1 kinase domains.

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Cite This Study

Goldsmith et al. (2026) studied this question.

synapsesocial.com/papers/6a17dcdf3fad632b0f9d9864https://doi.org/10.1021/acs.biochem.5c00825
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