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Timothy mutation disrupts the link between activation and inactivation in Ca(V)1.2 protein
Katrin Depil1, Stanislav Beyl, Anna Stary-Weinzinger
1Department of Pharmacology and Toxicology, University of Vienna, Althanstrasse 14, A-1090 Vienna, Austria.
Abstract:
The Timothy syndrome mutations G402S and G406R abolish inactivation of Ca(V)1.2 and cause multiorgan dysfunction and lethal arrhythmias. To gain insights into the consequences of the G402S mutation on structure and function of the channel, we systematically mutated the corresponding Gly-432 of the rabbit channel and applied homology modeling. All mutations of Gly-432 (G432A/M/N/V/W) diminished channel inactivation. Homology modeling revealed that Gly-432 forms part of a highly conserved structure motif (G/A/G/A) of small residues in homologous positions of all four domains (Gly-432 (IS6), Ala-780 (IIS6), Gly-1193 (IIIS6), Ala-1503 (IVS6)). Corresponding mutations in domains II, III, and IV induced, in contrast, parallel shifts of activation and inactivation curves indicating a preserved coupling between both processes. Disruption between coupling of activation and inactivation was specific for mutations of Gly-432 in domain I. Mutations of Gly-432 removed inactivation irrespective of the changes in activation. In all four domains residues G/A/G/A are in close contact with larger bulky amino acids from neighboring S6 helices. These interactions apparently provide adhesion points, thereby tightly sealing the activation gate of Ca(V)1.2 in the closed state. Such a structural hypothesis is supported by changes in activation gating induced by mutations of the G/A/G/A residues. The structural implications for Ca(V)1.2 activation and inactivation gating are discussed.
Insights
Mutations in the Ca(V)1.2 calcium channel, specifically at Gly-432 in domain I, abolish channel inactivation. This disruption is linked to the channel's structure and function, impacting activation and inactivation gating.
Area of Science:
- Molecular biology
- Cardiovascular research
- Ion channel biophysics
Background:
- Timothy syndrome is linked to Ca(V)1.2 channel mutations causing dysfunction and arrhythmias.
- Understanding the structural basis of Ca(V)1.2 inactivation is crucial for disease mechanisms.
Purpose of the Study:
- To investigate the structural and functional consequences of Gly-402 in Ca(V)1.2 channel inactivation.
- To explore the role of conserved residues in channel gating using homology modeling.
Main Methods:
- Systematic mutagenesis of Gly-432 in the rabbit Ca(V)1.2 channel.
- Homology modeling to analyze channel structure and residue interactions.
- Electrophysiological analysis of channel activation and inactivation.
Main Results:
- Mutations at Gly-432 significantly diminished Ca(V)1.2 channel inactivation.
- Homology modeling revealed Gly-432 as part of a conserved motif critical for inactivation.
- Disruption of activation-inactivation coupling was specific to domain I mutations.
Conclusions:
- Gly-432 and homologous residues in other domains are essential for Ca(V)1.2 inactivation.
- These residues likely form adhesion points that stabilize the closed state of the activation gate.
- The findings provide structural insights into Ca(V)1.2 gating mechanisms and Timothy syndrome.
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