Title :
A study of propagated and nonpropagated action potential upstrokes based upon experiments and modeling
Author :
Taniguchi, A. ; Anno, T. ; Shirakawa, M. ; Usui, S. ; Toyama, J.
Author_Institution :
Res. Inst. of Environ. Med., Nagoya Univ., Japan
Abstract :
The authors reevaluated the process of action potential propagation in a quantitative manner, using a spacially discrete cable model with an optimized membrane current model. The model reconstructs an action potential upstroke with a higher stroke velocity (V max) of 451 V/s, which was comparable to that obtained from isolated myocytes (512±77 V/s). The gap junctional conductance ( Gj) was estimated based upon the conduction velocity (65±6 cm/s) along the long axis of papillary muscles. The estimated Gj was 6 mS/cm2, that is 700 nS, which was within the range of the measured gap conductances from paired ventriculocytes. In the one-dimensional model, the Vmax of the simulated propagating action potential was 322 V/s, which was larger than the Vmax obtained from papillary muscles (θL) (237±25 V/s) by approximately 35%. In the two-dimensional hexagonal model, the simulated θL was 63 cm/s and the Vmax amounted to 257 V/s, which was comparable to the experimental results
Keywords :
bioelectric potentials; cardiology; muscle; physiological models; 1D model; 2D hexagonal model; 700 nS; gap conductance; isolated myocytes; nonpropagated action potential upstrokes; optimized membrane current model; paired ventriculocytes; propagated action potential upstrokes; spacially discrete cable model; Biomembranes; Calcium; Communication cables; Computer science; Electrodes; Heart; Ischemic pain; Mathematical model; Microelectrodes; Muscles;
Conference_Titel :
Computers in Cardiology 1991, Proceedings.
Conference_Location :
Venice
Print_ISBN :
0-8186-2485-X
DOI :
10.1109/CIC.1991.168992