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PMID: 1322450 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Two classes of gating current from L-type Ca channels in guinea pig ventricular myocytes.

The Journal of general physiology ·Vol. 99 ·No. 6 ·1992-06-00 ·Pages 863-95

Shirokov R, Levis R, Shirokova N, Ríos E

Abstract

Intramembrane charge movement was recorded in guinea pig ventricular myocytes at 19-22 degrees C using the whole-cell patch clamp technique. From a holding potential of -110 mV, the dependence of intramembrane charge moved on test voltage (Q(V)) followed the sum of two Boltzmann components. One component had a transition voltage (V) of -48 mV and a total charge (Qmax) of congruent to 3 nC/microF. The other had a V of -18 mV and a Qmax of 11 nC/microF. Ba2+ currents through Ca channels began to activate at -45 mV and peaked at congruent to -15 mV. Na+ current peaked at -35 to -30 mV. Availability of charge (in pulses from -70 to +10 mV) depended on the voltage of conditioning depolarizations as two Boltzmann terms plus a constant. One term had a V of -88 mV and a Qmax of 2.5 nC/microF; the other had a V of -29 mV and a Qmax of 6.3 nC/microF. From the Q(V) dependence, the voltage dependence of the ionic currents, and the voltage dependence of the availability of charge, the low voltage term of Q(V) and availability was identified as Na gating charge, at a total of 3.5 nC/microF. The remainder, 11 nC/microF, was attributed to Ca channels. After pulses to -40 mV and above, the OFF charge movement had a slow exponentially decaying component. Its time constant had a bell-shaped dependence on OFF voltage peaking at 11 ms near -100 mV. Conditioning depolarizations above -40 mV increased the slow component exponentially with the conditioning duration (tau approximately equal to 480 ms). Its magnitude was reduced as the separation between conditioning and test pulses increased (tau approximately equal to 160 ms). The voltage distribution of the slow component of charge was measured after long (5 s) depolarizations. Its V was -100 mV, a shift of -80 mV from the value in normally polarized cells. This voltage was the same at which the time constant of the slow component peaked. Qmax and the steepness of the voltage distribution were unchanged by depolarization. This indicates that the same molecules that produce the charge movement in normally polarized cells also produce the slow component in depolarized cells. 100 microns D600 increased by 77% the slow charge movement after a 500-ms conditioning pulse. These results demonstrate two classes of charge movement associated with L-type Ca channels, with kinetics and voltage dependence similar to charge 1 and charge 2 of skeletal muscle.(ABSTRACT TRUNCATED AT 400 WORDS)

MeSH Terms
Animals Biological Transport/physiology Calcium/pharmacokinetics Calcium Channels/physiology Cell Membrane Permeability/physiology Cells, Cultured Dihydropyridines/pharmacology Electric Conductivity Gallopamil/pharmacology Guinea Pigs Heart Ventricles/cytology,ultrastructure Ion Channel Gating/physiology Membrane Potentials/physiology Muscle, Smooth, Vascular/physiology Sodium/pharmacokinetics Sodium Channels/physiology Ventricular Function
Chemicals
Calcium Channels Dihydropyridines Sodium Channels Gallopamil 1,4-dihydropyridine Sodium Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Shirokov R
Department of Physiology, Rush University, Chicago, Illinois 60612.
Levis R
Shirokova N
Ríos E
References (36)
36 references, click to expand
  1. Differentiation of receptor sites for [3H]nitrendipine in chick hearts and physiological relation to the slow Ca2+ channel and to excitation-contraction coupling.
    Eur J Biochem. 1984 Mar 15;139(3):673-81 PMID: 6321185
  2. Ontogenic appearance of Ca2+ channels characterized as binding sites for nitrendipine during development of nervous, skeletal and cardiac muscle systems in the rat.
    FEBS Lett. 1983 Nov 28;164(1):75-9 PMID: 6317445
  3. Calcium tolerant ventricular myocytes prepared by preincubation in a "KB medium".
    Pflugers Arch. 1982 Oct;395(1):6-18 PMID: 7177773
  4. Sodium and calcium gating currents in an Aplysia neurone.
    J Physiol. 1979 Jun;291:467-81 PMID: 480239
  5. Properties of L-type calcium channel gating current in isolated guinea pig ventricular myocytes.
    J Gen Physiol. 1991 Aug;98(2):265-85 PMID: 1658192
  6. Gating currents associated with Na channels in canine cardiac Purkinje cells.
    J Gen Physiol. 1990 Mar;95(3):439-57 PMID: 2157792
  7. Inactivation of calcium channels in mammalian heart cells: joint dependence on membrane potential and intracellular calcium.
    J Physiol. 1985 Jul;364:395-411 PMID: 2411919
  8. Involvement of dihydropyridine receptors in excitation-contraction coupling in skeletal muscle.
    Nature. 1987 Feb 19-25;325(6106):717-20 PMID: 2434854
  9. Effects of D-600 on intramembrane charge movement of polarized and depolarized frog muscle fibers.
    J Gen Physiol. 1989 Jul;94(1):43-64 PMID: 2478660
  10. Nonlinear charge movement in mammalian cardiac ventricular cells. Components from Na and Ca channel gating.
    J Gen Physiol. 1989 Jul;94(1):65-93 PMID: 2553859
  11. Voltage sensors of the frog skeletal muscle membrane require calcium to function in excitation-contraction coupling.
    J Physiol. 1988 Apr;398:475-505 PMID: 3260626
  12. Kinetics and steady-state properties of the charged system controlling sodium conductance in the squid giant axon.
    J Physiol. 1974 Jun;239(2):393-434 PMID: 4414038
  13. Currents related to movement of the gating particles of the sodium channels.
    Nature. 1973 Apr 13;242(5398):459-61 PMID: 4700900
  14. Sodium channels and gating currents.
    Physiol Rev. 1981 Jul;61(3):644-83 PMID: 6265962
  15. The Na+ channel in mammalian cardiac cells. Two kinds of tetrodotoxin receptors in rat heart membranes.
    J Biol Chem. 1983 Jul 25;258(14):8799-805 PMID: 6306000
  16. A comparison of calcium currents in rat and guinea pig single ventricular cells.
    Circ Res. 1984 Feb;54(2):144-56 PMID: 6319043
  17. Distribution and kinetics of membrane dielectric polarization. 1. Long-term inactivation of gating currents.
    J Gen Physiol. 1982 Jan;79(1):21-40 PMID: 7061986
  18. Sodium current in single rat heart muscle cells.
    J Physiol. 1981 Sep;318:479-500 PMID: 7320902
  19. Asymmetrical displacement currents in nerve cell membrane and effect of internal fluoride.
    Nature. 1977 May 5;267(5606):70-2 PMID: 859639
  20. Charge movement in the membrane of striated muscle.
    J Physiol. 1976 Jan;254(2):339-60 PMID: 1082509
  21. Inotropic and electrophysiological actions of verapamil and D 600 in mammalian myocardium. III. Effects of the optical isomers on transmembrane action potentials.
    Naunyn Schmiedebergs Arch Pharmacol. 1975;290(1):81-97 PMID: 1178071
  22. Molecular basis of gating charge immobilization in Shaker potassium channels.
    Science. 1991 Nov 1;254(5032):679-83 PMID: 1948047
  23. Voltage sensor of excitation-contraction coupling in skeletal muscle.
    Physiol Rev. 1991 Jul;71(3):849-908 PMID: 2057528
  24. Effects of gallopamil on calcium release and intramembrane charge movements in frog skeletal muscle fibres.
    J Physiol. 1990 Feb;421:343-62 PMID: 2348396
  25. Separation of cardiac plasmalemma into cell surface and T-tubular components. Distribution of saxitoxin- and nitrendipine-binding sites.
    J Biol Chem. 1986 May 15;261(14):6556-63 PMID: 2422167
  26. An intrinsic potential-dependent inactivation mechanism associated with calcium channels in guinea-pig myocytes.
    J Physiol. 1987 Aug;389:205-22 PMID: 2445973
  27. Inactivation of sodium channels in isolated myocardial mouse cells.
    Eur Biophys J. 1987;15(2):117-27 PMID: 2449346
  28. Intramembrane charge movement in guinea-pig and rat ventricular myocytes.
    J Physiol. 1989 Aug;415:601-24 PMID: 2484211
  29. Asymmetric charge movement and calcium currents in ventricular myocytes of neonatal rat.
    J Physiol. 1988 Dec;406:277-97 PMID: 2855436
  30. Restoration of excitation-contraction coupling and slow calcium current in dysgenic muscle by dihydropyridine receptor complementary DNA.
    Nature. 1988 Nov 10;336(6195):134-9 PMID: 2903448
  31. The subcellular localization of calcium ion in mammalian myocardium.
    J Cell Biol. 1969 May;41(2):401-23 PMID: 4181965
  32. Voltage dependent charge movement of skeletal muscle: a possible step in excitation-contraction coupling.
    Nature. 1973 Mar 23;242(5395):244-6 PMID: 4540479
  33. The ultrastructure of the cat myocardium. I. Ventricular papillary muscle.
    J Cell Biol. 1969 Jul;42(1):1-45 PMID: 4891913
  34. Rapidly activating hydrogen ion currents in perfused neurones of the snail, Lymnaea stagnalis.
    J Physiol. 1984 Jun;351:199-216 PMID: 6086903
  35. Improved patch-clamp techniques for high-resolution current recording from cells and cell-free membrane patches.
    Pflugers Arch. 1981 Aug;391(2):85-100 PMID: 6270629
  36. Charge movement in skeletal muscle fibers paralyzed by the calcium-entry blocker D600.
    Proc Natl Acad Sci U S A. 1984 Apr;81(8):2582-5 PMID: 6609364
Article Info
Journal
The Journal of general physiology
Abbr.
J Gen Physiol
ISSN
0022-1295
Published
1992-06-00
Pages
863-95
Language
English
Region
United States
NLM ID
2985110R
PMCID
PMC2216624
Subset
IM
Grants
NINDS NIH HHS · NS-21111 · United States
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