Phosphorylation sites in the Hook domain of CaVβ subunits differentially modulate CaV1.2 channel function

Sylvain Brunet1, Michelle A Emrick2, Martin Sadilek3

  • 1Department of Pharmacology, University of Washington, Seattle, WA 98195, United States; Department of Neurosciences, Cleveland Clinic Organization, Cleveland, OH 44195, United States.

Insights

This study identifies two phosphorylation sites on Ca(V)β subunits, revealing a new regulatory mechanism for L-type calcium channels. These findings enhance our understanding of Ca(V)1.2 channel function and regulation.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Physiology

Background:

  • L-type calcium current regulation is crucial for cellular function.
  • Protein kinases regulate Ca(V)1.2 channels, but phosphorylation sites are largely unknown.
  • Ca(V)β subunits are key regulators of Ca(V)1.2 channel activity.

Purpose of the Study:

  • To identify in vivo phosphorylation sites on Ca(V)β subunits.
  • To investigate the functional impact of these phosphorylation sites on Ca(V)1.2 channel activity.
  • To explore a novel regulatory mechanism for L-type calcium channels.

Main Methods:

  • Combined liquid chromatography-tandem mass spectrometry (LC-MS/MS) for phosphoproteomic analysis.
  • Whole-cell patch clamp electrophysiology to assess channel function.
  • Site-directed mutagenesis to create phosphomimetic and phosphoinhibitory mutations in Ca(V)β subunits.

Main Results:

  • Identified Ser(193) and Thr(205) in the Ca(V)β1a Hook domain as in vivo phosphorylation sites.
  • Phosphorylation at Ser(193) and Thr(205) is conserved across Ca(V)β isoforms.
  • Mutations mimicking phosphorylation at Ser(152) in Ca(V)β2b altered channel current and voltage dependence.
  • Phosphomimetic mutation at Thr(164) in Ca(V)β2b increased calcium-dependent inactivation, an effect specific to this isoform.

Conclusions:

  • Two conserved phosphorylation sites in the Ca(V)β Hook domain regulate Ca(V)1.2 channel function.
  • Phosphorylation of Ca(V)β subunits provides a new layer of L-type calcium channel regulation.
  • These findings offer insights into the complex modulation of cardiac and neuronal calcium signaling.

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