Title :
Effects of gap junction conductance on dynamics of sinoatrial node cells: two-cell and large-scale network models
Author :
Cai, Dongming ; Winslow, Raimond L. ; Noble, Denis
Author_Institution :
Army High Performance Comput. Center, Minnesota Univ., Minneapolis, MN, USA
fDate :
3/1/1994 12:00:00 AM
Abstract :
A computational model of single rabbit sinoatrial (SA) node cells has been revised to fit data on regional variation of rabbit SA node cell oscillation properties. The revised model simulates differences in oscillation frequency. Maximum diastolic potential, overshoot potential, and peak upstroke velocity observed in cells from different regions of the node. Dynamic properties of electrically coupled cells, each with different intrinsic oscillation frequency, are studied as a function of coupling conductance. Simulation results demonstrate at least four distinct regimes of behavior as coupling conductance is varied: (a) independent oscillation (G c<1 pS); (b) complex oscillation (1≤G c<220 pS); (c) frequency, but not waveform entrainment (G c≥220 pS); and (d) frequency and waveform entrainment (G c≥50 nS). The conductance of single cardiac myocyte gap junction channels is about 50 pS. These simulations therefore show that very few gap junction channels between each cell are required for frequency entrainment. Analyses of large-scale SA node network models implemented on the Connection Machine CM-200 supercomputer indicate that frequency entrainment of large networks is also supported by a small number of gap junction channels between neighboring cells.
Keywords :
bioelectric phenomena; cardiology; cellular biophysics; physiological models; 2-cell model; 220 nS; 50 nS; Connection Machine CM-200 supercomputer; computational model; coupling conductance; electrically coupled cells; frequency entrainment; gap junction conductance; intrinsic oscillation frequency; large-scale network model; maximum diastolic potential; oscillation frequency; overshoot potential; peak upstroke velocity; sinoatrial node cells dynamics; waveform entrainment; Aggregates; Computational modeling; Couplings; Electric resistance; Frequency synchronization; Heart; Immune system; Large-scale systems; Pacemakers; Rabbits; Algorithms; Animals; Computer Simulation; Electric Conductivity; Electrophysiology; Gap Junctions; Membrane Potentials; Models, Cardiovascular; Rabbits; Sinoatrial Node;
Journal_Title :
Biomedical Engineering, IEEE Transactions on