On the Role of Ca 2+ - and Voltage-Dependent Inactivation in Ca v 1.2 Sensitivity for the Phenylalkylamine (-)Gallopamil
- 12 October 2001
- journal article
- other
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 89 (8) , 700-708
- https://doi.org/10.1161/hh2001.098983
Abstract
Abstract— L-type calcium channels (Cav1.m) inactivate in response to elevation of intracellular Ca2+ (Ca2+-dependent inactivation) and additionally by conformational changes induced by membrane depolarization (fast and slow voltage-dependent inactivation). Molecular determinants of inactivation play an essential role in channel inhibition by phenylalkylamines (PAAs). The relative impacts, however, of Ca2+-dependent and voltage-dependent inactivation in Cav1.2 sensitivity for PAAs remain unknown. In order to analyze the role of the different inactivation processes, we expressed Cav1.2 constructs composed of different β-subunits (β1a-, β2a-, or β3-subunit) in Xenopus oocytes and estimated their (-)gallopamil sensitivity by means of the two-microelectrode voltage clamp with either Ba2+ or Ca2+ as charge carrier. Cav1.2 consisting of the β2a-subunit displayed the slowest inactivation and the lowest apparent sensitivity for the PAA (-)gallopamil. A significantly higher apparent (-)gallopamil-sensitivity with Ca2+ as charge carrier was observed for all 3 β-subunit compositions. The kinetics of Ca2+-dependent inactivation and slow voltage-dependent inactivation were not affected by drug. The higher sensitivity of the Cav1.2 channels for (-)gallopamil with Ca2+ as charge carrier results from slower recovery (τrec,Ca ≈15 seconds versus τrec,Ba ≈3 to 5 seconds) from a PAA-induced channel conformation. We propose a model where (-)gallopamil promotes a fast voltage-dependent component in Cav1.2 inactivation. The model reproduces the higher drug sensitivity in Ca2+ as well as the lower sensitivity of slowly inactivating Cav1.2 composed of the β2a-subunit.Keywords
This publication has 35 references indexed in Scilit:
- Nomenclature of Voltage-Gated Calcium ChannelsNeuron, 2000
- A Region in IVS5 of the Human Cardiac L-type Calcium Channel Is Required for the Use-dependent Block by Phenylalkylamines and BenzothiazepinesPublished by Elsevier ,1999
- Mechanism of voltage‐ and use‐dependent block of class A Ca2+ channels by mibefradilBritish Journal of Pharmacology, 1998
- Structural basis of drug binding to L Ca2+ channelsTrends in Pharmacological Sciences, 1998
- Functional impact of syntaxin on gating of N-type and Q-type calcium channelsNature, 1995
- Tiapamil reduces the calcium inward current of isolated smooth muscle cells. Dependence on holding potential and pulse frequencyEuropean Journal of Pharmacology, 1986
- Interactions of organic calcium channel antagonists with calcium channels in single frog atrial cells.The Journal of general physiology, 1985
- Cat ventricular muscle treated with D600: characteristics of calcium channel block and unblock.The Journal of Physiology, 1984
- Mechanism of calcium channel blockade by verapamil, D600, diltiazem and nitrendipine in single dialysed heart cellsNature, 1983
- On the mechanism of slow calcium channel block in heartPflügers Archiv - European Journal of Physiology, 1980