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October 1, 1991The Journal of Physiology270 citationsOpen Access

Regional variations in action potentials and transient outward current in myocytes isolated from rabbit left ventricle.

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DFDavid FedidaWGWayne R. Giles

Key Result

Epicardial cells had higher transient outward K+ current density (7.66 pA/pF) than endocardial (6.45 pA/pF) or papillary muscle cells (3.69 pA/pF), explaining regional action potential variations.

Key Points

  • To investigate regional variations in action potentials and transient outward K+ current in rabbit left ventricle myocytes.
  • Isolated myocytes from epicardial, endocardial, and papillary muscle regions of rabbit left ventricles
  • Conducted voltage clamp experiments to measure I(t)
  • Used 4-aminopyridine and varying stimulation rates to assess effects on action potential characteristics.
  • Papillary muscle cells displayed a higher action potential plateau amplitude (104.7 mV) compared to epicardial cells (96.47 mV)
  • I(t) current density was highest in epicardial cells (7.66 pA/pF) and lowest in papillary muscle cells (3.69 pA/pF)
  • Estimates of I(t) channel density per cell: epicardium 1495, endocardium 1175, and papillary muscle 875.

Structured PICO

P
Population
Myocytes isolated from the epicardial surface, the endocardial trabeculae, and the papillary muscles of rabbit left ventricles
I
Intervention
Electrophysiological assessment (whole-cell and cell-attached patch clamp) with exposure to 4-aminopyridine or varying stimulation rates (0.1 Hz to 3.3 Hz)
C
Comparator
Comparison between epicardial, endocardial, and papillary muscle cells
O
Outcome
Action potential morphology and transient outward K+ current (I(t)) density and kineticssurrogate

Regional variations in the shape of initial repolarization in rabbit left ventricular cells are caused by differences in the magnitude of the transient outward K+ current, likely due to varying channel densities across regions.

Abstract

Regional variations in the shape of early repolarization of the action potential have been correlated to differences in transient outward K+ current, I(t), in myocytes isolated from the epicardial surface, the endocardial trabeculae and the papillary muscles of rabbit left ventricles. Temperature was 35 degrees C during whole-cell, and 22-23 degrees C during cell-attached experiments. 2. Membrane resting potentials were very similar regionally. At 0.1 Hz stimulation the action potential plateau amplitude in papillary muscle cells was significantly higher (104.7 mV) than in epicardial cells (96.47 mV). Exposure to 4-aminopyridine or increases in the rate of stimulation from 0.1 Hz to 3.3 Hz increased plateau height and diminished the initial notch on repolarization. These effects were correlated to the magnitude of I(t) in these cells. At low rates of stimulation I(t) caused a 'spike and dome' morphology of the action potential. 3. Voltage clamp experiments confirmed a higher current density of I(t) in epicardial cells (7.66 pA/pF at +20 mV) than in endocardial (6.45 pA/pF) or papillary muscle cells (3.69 pA/pF). I(t) at 35 degrees C was faster and larger than previously reported and individual currents inactivated almost completely during 100 ms pulses to plateau potentials. No differences in the kinetics or voltage dependence of whole-cell currents were found. Thus, the half-inactivation potential was -37.8 mV in cells from all three regions. 4. Cell-attached recordings from endocardial and epicardial cells showed very similar single-channel amplitudes, burst open probabilities and ensemble averages. The peak channel open probability soon after the start of depolarizing voltage clamp pulses did not change between cell types (P approximately 0.8). The slope conductance of I(t) channels was 13.0 pS with an intercept near the resting potential of the cell. 5. We conclude that regional variations in the shape of initial repolarization in cells from rabbit left ventricle are caused by variations in the magnitude of the transient outward K+ current, I(t). Epicardial cells have the largest, and papillary muscle cells the smallest I(t). The differences are not explained by alterations in the whole-cell kinetics or single-channel kinetics and conductance. The most likely explanation for variations in whole-cell current density is therefore a decrease in channel density in endocardium and papillary muscle compared with epicardial tissue. We estimate the density of I(t) channels per cell to be 1495 (one per 3-4 micron2) in epicardium, 1175 (one per 4-5 micron2) in endocardium, and 875 (one per 6 micron2) in papillary muscle cells.

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Cite This Study

Fedida et al. (1991) studied Rabbit left ventricle myocytes. Regional variations (epicardial vs endocardial vs papillary muscle cells) was evaluated on Transient outward K+ current (I(t)) density and action potential plateau amplitude. Epicardial cells had higher transient outward K+ current density (7.66 pA/pF) than endocardial (6.45 pA/pF) or papillary muscle cells (3.69 pA/pF), explaining regional action potential variations.

synapsesocial.com/papers/6a0a14750e219f8cdd346c56https://doi.org/10.1113/jphysiol.1991.sp018789
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