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.
Abstract:
Voltage-gated Ca(2+) channels of the Ca(V)1 family initiate excitation-contraction coupling in cardiac, smooth, and skeletal muscle and are primary targets for regulation by the sympathetic nervous system in the 'fight-or-flight' response. In the heart, activation of beta-adrenergic receptors greatly increases the L-type Ca(2+) current through Ca(V)1.2 channels, which requires phosphorylation by cyclic AMP-dependent protein kinase (PKA) anchored via an A-kinase anchoring protein (AKAP15). Surprisingly, the site of interaction of PKA and AKAP15 lies in the distal C-terminus, which is cleaved from the remainder of the channel by in vivo proteolytic processing. Here we report that the proteolytically cleaved distal C-terminal domain forms a specific molecular complex with the truncated alpha(1) subunit and serves as a potent autoinhibitory domain. Formation of the autoinhibitory complex greatly reduces the coupling efficiency of voltage sensing to channel opening and shifts the voltage dependence of activation to more positive membrane potentials. Ab initio structural modelling and site-directed mutagenesis revealed a binding interaction between a pair of arginine residues in a predicted alpha-helix in the proximal C-terminal domain and a set of three negatively charged amino acid residues in a predicted helix-loop-helix bundle in the distal C-terminal domain. Disruption of this interaction by mutation abolished the inhibitory effects of the distal C-terminus on Ca(V)1.2 channel function. These results provide the first functional characterization of this autoinhibitory complex, which may be a major form of the Ca(V)1 family Ca(2+) channels in cardiac and skeletal muscle cells, and reveal a unique ion channel regulatory mechanism in which proteolytic processing produces a more effective autoinhibitor of Ca(V)1.2 channel function.
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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