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A Study of the Ion Selectivity and the Kinetic Properties of the Calcium Dependent Slow Inward Current in Mammalian Cardiac Muscle

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Journal J Physiol
Specialty Physiology
Date 1977 Jan 1
PMID 839451
Citations 122
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Abstract

1. A voltage-clamp method combining a single surcose gap and two intracellular micro-electrodes was used to measure membrane currents in ventricullar myocardial fibres. 2. The adequacy of the voltage-clamp method is demonstrated by comparing the total current, It, across the gap with the voltage difference, delta V, between the two intracellular micro-electrodes, i.e. another independent way of measuring membrane currents. With both current measurements the slow inward current, Is, shows the same voltage- and time-dependences. 3. The sensitivity of the slow inward current to variation in external Ca and Na concentrations was investigated systematically. The reversal potential of the slow inward current was sensitive to variation of both ion species. 4. From the reversal potential measurements relative permeabilities of the conductance channels of the slow inward current were estimated as PCa/PNa approximately 1/0-01 and PCa/PK approximately 1/0-01 by means of the constant field equation. 5. The activation and inactivation kinetics of the slow inward current were explored in detail and related to the plateau of the action potential.

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References
1.
Reuter H . Divalent cations as charge carriers in excitable membranes. Prog Biophys Mol Biol. 1973; 26:1-43. DOI: 10.1016/0079-6107(73)90016-3. View

2.
Reuter H . Exchange of calcium ions in the mammalian myocardium. Mechanisms and physiological significance. Circ Res. 1974; 34(5):599-605. DOI: 10.1161/01.res.34.5.599. View

3.
Isnberg G . Is potassium conductance of cardiac Purkinje fibres controlled by (Ca2+)?. Nature. 1975; 253(5489):273-4. DOI: 10.1038/253273a0. View

4.
TRAUTWEIN W, McDONALD T, Tripathi O . Calcium conductance and tension in mammalian ventricular muscle. Pflugers Arch. 1975; 354(1):55-74. DOI: 10.1007/BF00584503. View

5.
Ramon F, Anderson N, Joyner R, Moore J . Axon voltage-clamp simulations. A multicellular preparation. Biophys J. 1975; 15(1):55-69. PMC: 1334610. DOI: 10.1016/S0006-3495(75)85791-2. View