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Mechanical Stimulation-induced Calcium Wave Propagation in Cell Monolayers: The Example of Bovine Corneal Endothelial Cells
Published on: July 16, 2013
Unitary Cl- channels activated by cytoplasmic Ca2+ in canine ventricular myocytes
M L Collier1, P C Levesque, J L Kenyon
1Department of Physiology and Cell Biology, University of Nevada School of Medicine, Reno 89557-0046, USA.
Abstract:
Recent whole-cell studies have shown that Ca(2+)-activated Cl- currents contribute to the Ca(2+)-dependent 4-aminopyridine-insensitive component of the transient outward current and to the arrhythmogenic transient inward current in rabbit and canine cardiac cells. These Cl(-)-sensitive currents are activated by Ca2+ release from the sarcoplasmic reticulum and are inhibited by anion transport blockers; however, the unitary single channels responsible have yet to be identified. We used inside-out patches from canine ventricular myocytes and conditions under which the only likely permeant ion is Cl- to identify 4-aminopyridine-resistant unitary Ca(2+)-activated Cl- channels, Ca2+ applied to the cytoplasmic surface of membrane patches activated small-conductance (1.0 to 1.3 pS) channels. These channels were Cl- selective, with rectification properties that could be described by the Goldman-Hodgkin-Katz current equation. Channel activity exhibited time independence when cytoplasmic Ca2+ was held constant and was blocked by the anion transport blockers, DIDS and niflumic acid. Ca2+ (ranging from pCa > or = 6 to pCa 3) applied to the cytoplasmic surface of inside-out patches increased, in a dose-dependent manner, NPo, where N is the number of channels opened and Po is open probability. At negative membrane potentials (-60 to -130 mV), an estimate of the dependence of NPo on cytoplasmic Ca2+ yielded an apparent Kd of 150.2 mumol/L. At pCa 3, an average channel density of approximately equal to 3 microns-2 was estimated. Calculations based on these estimates of cytoplasmic Ca2+ sensitivity and channel current amplitude and density suggest that these small-conductance Cl- channels contribute significant whole-cell membrane current in response to changes in intracellular Ca2+ within the physiological range. We suggest that these small-conductance Ca(2+)-activated Cl- channels underlie the transient Ca(2+)-activated 4-aminopyridine-insensitive current, which contributes to phase-1 repolarization, and under conditions of Ca2+ overload, these channels may generate transient inward currents, contributing to the development of triggered cardiac arrhythmias.
Insights
Researchers identified novel small-conductance calcium-activated chloride channels (CaCCs) in canine cardiac cells. These channels contribute to cardiac repolarization and may cause arrhythmias during calcium overload.
Area of Science:
- Cardiovascular Physiology
- Ion Channel Electrophysiology
- Molecular Cardiology
Background:
- Whole-cell studies indicate calcium-activated chloride currents in cardiac cells contribute to repolarization and arrhythmias.
- The specific single channels responsible for these currents remain unidentified.
Purpose of the Study:
- To identify and characterize the unitary single channels underlying calcium-activated chloride currents in canine ventricular myocytes.
- To determine the biophysical properties and physiological relevance of these channels.
Main Methods:
- Utilized inside-out patch-clamp recordings from canine ventricular myocytes.
- Applied calcium to the cytoplasmic surface of membrane patches to activate channels.
- Investigated channel selectivity, conductance, kinetics, and block by anion transport inhibitors (DIDS, niflumic acid).
Main Results:
- Identified small-conductance (1.0-1.3 pS) calcium-activated chloride channels.
- Channels exhibited chloride selectivity and rectification, activated by cytoplasmic calcium in a dose-dependent manner (apparent Kd ~150 µmol/L).
- Channel activity was inhibited by DIDS and niflumic acid, suggesting anion transport involvement.
Conclusions:
- These small-conductance calcium-activated chloride channels likely underlie the 4-aminopyridine-insensitive transient outward current, contributing to cardiac repolarization.
- Under conditions of calcium overload, these channels may generate transient inward currents, potentially contributing to triggered cardiac arrhythmias.
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