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Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
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.
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.
Abstract:
The BTB-Kelch protein KLHL3 is a Cullin3-dependent E3 ligase that mediates the ubiquitin-dependent degradation of kinases WNK1-4 to control blood pressure and cell volume. A crystal structure of KLHL3 has defined its binding to an acidic degron motif containing a PXXP sequence that is strictly conserved in WNK1, WNK2 and WNK4. Mutations in the second proline abrograte the interaction causing the hypertension syndrome pseudohypoaldosteronism type II. WNK3 shows a diverged degron motif containing four amino acid substitutions that remove the PXXP motif raising questions as to the mechanism of its binding. To understand this atypical interaction, we determined the crystal structure of the KLHL3 Kelch domain in complex with a WNK3 peptide. The electron density enabled the complete 11-mer WNK-family degron motif to be traced for the first time revealing several conserved features not captured in previous work, including additional salt bridge and hydrogen bond interactions. Overall, the WNK3 peptide adopted a conserved binding pose except for a subtle shift to accommodate bulkier amino acid substitutions at the binding interface. At the centre, the second proline was substituted by WNK3 Thr541, providing a unique phosphorylatable residue among the WNK-family degrons. Fluorescence polarisation and structural modelling experiments revealed that its phosphorylation would abrogate the KLHL3 interaction similarly to hypertension-causing mutations. Together, these data reveal how the KLHL3 Kelch domain can accommodate the binding of multiple WNK isoforms and highlight a potential regulatory mechanism for the recruitment of WNK3.
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