Title :
The effect of cellular discontinuities on the transient subthreshold response of a one-dimensional cardiac model
Author :
Cartee, Lianne A. ; Plonsey, Robert
Author_Institution :
Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
fDate :
3/1/1992 12:00:00 AM
Abstract :
Previous studies have examined the influence of the gap-junction discontinuity on the steady-state response of a cardiac cable to electrical defibrillation. It is important to understand when steady-state conditions may be assumed. For this reason, the transient, subthreshold behavior of a discontinuous cardiac cable is examined in this study. The behavior of the cable reflects two characteristics: (1) the continuous nature of the entire cable and (2) the isolated behavior of individual cells caused by the junction discontinuity. The results show two effective time constants of activation: a large time constant corresponding to the time constant of a continuous cable of equivalent length, and a small time constant reflecting the rapid activation of an isolated cell. The rapid activation establishes a voltage gradient, across each cell of the cable with one end of the cell hyperpolarized and the opposite end depolarized. This pattern of hyperpolarization and depolarization reaches a maximum value in approximately 3 mu s and may play an important role in the mechanism of defibrillation.
Keywords :
bioelectric phenomena; cardiology; cellular biophysics; physiological models; 1D cardiac model; 3 mus; cardiac cable; cellular discontinuities; defibrillation mechanism; depolarization; effective time constants; electrical defibrillation; gap-junction discontinuity; hyperpolarization; isolated cell activation; steady-state response; transient subthreshold response; voltage gradient; Biomedical engineering; Capacitance; Cardiac tissue; Defibrillation; Electric resistance; Extracellular; Immune system; Optical fiber cables; Steady-state; Voltage; Intercellular Junctions; Membrane Potentials; Models, Cardiovascular;
Journal_Title :
Biomedical Engineering, IEEE Transactions on