Sequence and structural variations determining the recruitment of WNK kinases to the KLHL3 E3 ligase

Zhuoyao Chen1, Jinwei Zhang2, Adrián R Murillo-de-Ozores3

  • 1Centre for Medicines Discovery, New Biochemistry Building, University of Oxford, South Parks Road, Oxford OX1 3QU, U.K.

The Biochemical Journal
|February 18, 2022
PubMed

Insights

The KLHL3 E3 ligase binds WNK kinases to regulate blood pressure. New structures reveal how KLHL3 accommodates WNK3, uncovering a potential phosphorylation-dependent regulatory mechanism.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • KLHL3 (BTB-Kelch protein) functions as a Cullin3-dependent E3 ligase.
  • It targets WNK1-4 kinases for degradation, controlling blood pressure and cell volume.
  • Mutations in KLHL3 cause pseudohypoaldosteronism type II, a form of hypertension.

Purpose of the Study:

  • To elucidate the binding mechanism of KLHL3 to the atypical WNK3 degron motif.
  • To understand how KLHL3 accommodates different WNK isoforms.
  • To identify potential regulatory mechanisms for WNK3 recruitment.

Main Methods:

  • X-ray crystallography of KLHL3 Kelch domain with WNK3 peptide.
  • Analysis of electron density for the WNK3 degron motif.
  • Fluorescence polarization and structural modeling experiments.

Main Results:

  • The crystal structure revealed detailed interactions of the KLHL3 Kelch domain with the WNK3 peptide, including novel salt bridges and hydrogen bonds.
  • The WNK3 peptide adopted a conserved binding pose with subtle shifts to accommodate substitutions.
  • WNK3 Thr541, substituting the conserved second proline, is a unique phosphorylatable residue.
  • Phosphorylation of WNK3 Thr541 was predicted to abrogate KLHL3 interaction, similar to hypertension-causing mutations.

Conclusions:

  • KLHL3 Kelch domain can bind diverse WNK isoforms through conserved and adaptable interactions.
  • WNK3 phosphorylation represents a potential regulatory mechanism for its interaction with KLHL3.
  • Understanding these interactions provides insights into blood pressure regulation and hypertension pathogenesis.

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