Mechanisms of cardiac cell excitation with premature monophasic and biphasic field stimuli: A model study

被引:20
作者
Fishler, MG [1 ]
Sobie, EA [1 ]
Thakor, NV [1 ]
Tung, L [1 ]
机构
[1] JOHNS HOPKINS UNIV,SCH MED,DEPT BIOMED ENGN,BALTIMORE,MD 21205
关键词
D O I
10.1016/S0006-3495(96)79692-3
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The mechanisms by which extracellular electric field stimuli induce the (re)excitation of cardiac cells in various stages of refractoriness are still not well understood. We modeled the interactions between an isolated cardiac cell and imposed extracellular electric fields to determine the mechanisms by which relatively low-strength uniform monophasic and biphasic field stimuli induce premature reexcitations. An idealized ventricular cell was simulated with 11 subcellular membrane patches, each of which obeyed Luo-Rudy (phase 1) kinetics. Implementing a standard S1-S2 pulse protocol, strength-interval maps of the cellular excitatory responses were generated for rectangular monophasic and symmetric biphasic field stimuli of 2, 5, 10, and 20 ms total duration. In contrast to previously documented current injection studies, our results demonstrate that a cardiac cell exhibits a significantly nonmonotonic excitatory response to premature monophasic and, to a much lesser degree, biphasic field stimuli. Furthermore, for monophasic stimuli at low field strengths, the cell is exquisitely sensitive to the timing of the shock, demonstrating a classic all-or-none depolarizing response, However, at higher field strengths this all-or-none sensitivity reverts to a more gradual transition of excitatory responses with respect to stimulus prematurity. In contrast, biphasic stimuli produce such graded responses at all suprathreshold stimulus strengths. Similar behaviors are demonstrated at all S2 stimulus durations tested. The generation of depolarizing (sodium) currents is triggered by one or more of the sharp field gradient changes produced at the stimulus edges-i.e., make, break, and transphasic (for biphasic stimuli)-with the magnitude of these edge-induced current contributions dependent on both the prematurity and the strength of the applied field, In all cases, however, depolarizing current arises from the partial removal of sodium inactivation from at least part of the cell, because of either the natural process of repolarization or a localized acceleration of this process by the impressed field.
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收藏
页码:1347 / 1362
页数:16
相关论文
共 46 条
[11]  
FISHLER MG, 1996, J ELECTROCARDIOL, V28, P174
[12]   SUPERIORITY OF BIPHASIC SHOCKS IN THE DEFIBRILLATION OF DOGS BY EPICARDIAL PATCHES AND CATHETER ELECTRODES [J].
FLAKER, GC ;
SCHUDER, JC ;
MCDANIEL, WC ;
STOECKLE, H ;
DBEIS, M .
AMERICAN HEART JOURNAL, 1989, 118 (02) :288-291
[13]   OPTICAL IMAGING OF CELL-MEMBRANE POTENTIAL CHANGES INDUCED BY APPLIED ELECTRIC-FIELDS [J].
GROSS, D ;
LOEW, LM ;
WEBB, WW .
BIOPHYSICAL JOURNAL, 1986, 50 (02) :339-348
[14]  
HOSHI T, 1962, JPN J PHYSIOL, V12, P433
[15]  
Jones J L, 1990, J Electrocardiol, V23 Suppl, P30, DOI 10.1016/0022-0736(90)90071-9
[16]   IMPROVED CARDIAC CELL EXCITATION WITH SYMMETRICAL BIPHASIC DEFIBRILLATOR WAVEFORMS [J].
JONES, JL ;
JONES, RE ;
BALASKY, G .
AMERICAN JOURNAL OF PHYSIOLOGY, 1987, 253 (06) :H1418-H1424
[17]   REFRACTORY PERIOD PROLONGATION BY BIPHASIC DEFIBRILLATOR WAVE-FORMS IS ASSOCIATED WITH ENHANCED SODIUM CURRENT IN A COMPUTER-MODEL OF THE VENTRICULAR ACTION-POTENTIAL [J].
JONES, JL ;
JONES, RE ;
MILNE, KB .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1994, 41 (01) :60-68
[18]   STIMULATION OF SPHEROIDAL CELLS - ROLE OF CELL-SHAPE [J].
KLEE, M ;
PLONSEY, R .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1976, 23 (04) :347-354
[19]   EFFECT OF FIELD STIMULATION ON CELLULAR REPOLARIZATION IN RABBIT MYOCARDIUM - IMPLICATIONS FOR REENTRY INDUCTION [J].
KNISLEY, SB ;
SMITH, WM ;
IDEKER, RE .
CIRCULATION RESEARCH, 1992, 70 (04) :707-715
[20]   OPTICAL RECORDINGS OF THE EFFECT OF ELECTRICAL-STIMULATION ON ACTION-POTENTIAL REPOLARIZATION AND THE INDUCTION OF REENTRY IN 2-DIMENSIONAL PERFUSED RABBIT EPICARDIUM [J].
KNISLEY, SB ;
HILL, BC .
CIRCULATION, 1993, 88 (05) :2402-2414