Autoinhibitory control of the CaV1.2 channel by its proteolytically processed distal C-terminal domain

Joanne T Hulme1, Vladimir Yarov-Yarovoy, Teddy W-C Lin

  • 1Department of Pharmacology, Mailstop 357280, University of Washington, Seattle, 98195-7280, USA.

Insights

Proteolytic cleavage of Ca(V)1.2 channels generates a potent autoinhibitor. This cleaved domain negatively regulates channel function, impacting cardiac and skeletal muscle excitation-contraction coupling.

Area of Science:

  • Molecular biology
  • Cardiovascular physiology
  • Ion channel biophysics

Background:

  • Voltage-gated Ca(2+) channels (Ca(V)1 family) are crucial for muscle excitation-contraction coupling.
  • These channels are regulated by the sympathetic nervous system via beta-adrenergic receptors and PKA phosphorylation.
  • Regulation involves A-kinase anchoring proteins (AKAP15) interacting with the channel's C-terminus.

Purpose of the Study:

  • To investigate the function of the proteolytically cleaved distal C-terminal domain of Ca(V)1.2 channels.
  • To characterize the autoinhibitory mechanism mediated by this cleaved domain.
  • To elucidate the structural basis of the interaction between the cleaved domain and the channel.

Main Methods:

  • In vivo proteolytic processing analysis
  • Molecular complex formation assays
  • Ab initio structural modeling
  • Site-directed mutagenesis
  • Electrophysiological recordings

Main Results:

  • The cleaved distal C-terminal domain forms a complex with the truncated alpha(1) subunit.
  • This complex acts as a potent autoinhibitor, reducing channel opening efficiency.
  • The interaction shifts channel activation to more positive potentials.
  • A specific arginine-rich motif in the proximal domain binds to a negatively charged helix-loop-helix in the distal domain.
  • Disrupting this interaction abolishes the autoinhibitory effect.

Conclusions:

  • Proteolytic processing of Ca(V)1.2 channels generates an autoinhibitory domain.
  • This mechanism represents a novel ion channel regulation strategy.
  • The autoinhibitory complex may be prevalent in cardiac and skeletal muscle Ca(V)1 channels.
  • This finding offers new insights into the regulation of muscle contraction.

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