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September 1, 1982Circulation Research119 citationsOpen Access

Active modulation of electrical coupling between cardiac cells of the dog. A mechanism for transient and steady state variations in conduction velocity.

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MSMadison S. SpachJKJ. Mailen KootseyJSJ D Sloan

Key Result

Rate and pattern of stimulation and ouabain altered the anisotropic distribution of propagation velocities in dog ventricular muscle, likely due to changes in cell coupling resistance.

Structured PICO

Does the rate and pattern of stimulation, and ouabain, alter propagation velocities in dog ventricular muscle fibers?

P
Population
Dog ventricular muscle fibers
I
Intervention
Rate and pattern of stimulation, and ouabain
O
Outcome
Propagation velocities of action potentials along longitudinal and transverse axessurrogate

Changes in cardiac conduction velocity induced by stimulation rate and ouabain are primarily due to active modulation of electrical coupling between cells rather than membrane ionic mechanisms.

Abstract

Propagation velocities of action potentials were measured simultaneously along the longitudinal and transverse axes of cardiac fibers in ventricular muscle. The anisotropic distribution of propagation velocities was found to be altered transiently and in the steady state by the rate and pattern of stimulation and by ouabain. The relative amount of velocity change varied with the direction of propagation and was greatest in the direction perpendicular to the long fiber axis. None of the variables usually associated with the membrane ionic mechanism of depolarization--resting potential, Vmax, and taufoot--showed enough variation to account for the observed changes in velocity. A simplified anisotropic propagation model representing the internal current pathway as an alternating sequence of cytoplasmic and junctional resistance is presented, taking into account the larger contribution to the internal resistance made by the cell couplings in the transverse direction than in the longitudinal direction. On the basis of this model, it was concluded that the observed changes in velocity were due to changes in cell coupling. Both transient and steady state velocity changes were found to correspond to changes in the action potential duration, suggesting that there is a common factor, such as the internal calcium and/or sodium concentrations, linking the control of the action potential duration and the coupling resistance between cardiac cells.

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Cite This Study

Spach et al. (1982) studied Cardiac fibers in ventricular muscle of the dog. Rate and pattern of stimulation, and ouabain was evaluated on Propagation velocities of action potentials along longitudinal and transverse axes. Rate and pattern of stimulation and ouabain altered the anisotropic distribution of propagation velocities in dog ventricular muscle, likely due to changes in cell coupling resistance.

synapsesocial.com/papers/6a0eda5f218372ada647c742https://doi.org/10.1161/01.res.51.3.347
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Reconstruction of propagated electrical activity with a two-dimensional model of anisotropic heart muscle.1986 · 102 citations
  2. 2Extracellular potentials related to intracellular action potentials during impulse conduction in anisotropic canine cardiac muscle.1979 · 303 citations
  3. 3Anisotropic conduction properties of canine ventricular muscles. Influence of high extracellular K+ concentration and stimulation frequency.1985 · 60 citations
  4. 4Propagating depolarization in anisotropic human and canine cardiac muscle: apparent directional differences in membrane capacitance. A simplified model for selective directional effects of modifying the sodium conductance on Vmax, tau foot, and the propagation safety factor.1987 · 85 citations
  5. 5Electrical uncoupling and impulse propagation in isolated sheep Purkinje fibers1989 · 55 citations