Genesis of the monophasic action potential: role of interstitial resistance and boundary gradients

被引:13
作者
Tranquillo, JV
Franz, MR
Knollmann, RC
Henriquez, AP
Taylor, DA
Henriquez, CS
机构
[1] Duke Univ, Dept Biomed Engn, Durham, NC 27708 USA
[2] Georgetown Univ, Washington, DC 20007 USA
[3] Vet Affairs Med Ctr, Washington, DC 20007 USA
[4] N Carolina Supercomp Ctr, Res Triangle Pk, NC 27709 USA
来源
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY | 2004年 / 286卷 / 04期
关键词
cardiac inhomogeneities; extracellular potentials; computer simulation;
D O I
10.1152/ajpheart.00803.2003
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The extracellular potential at the site of a mechanical deformation has been shown to resemble the underlying transmembrane action potential, providing a minimally invasive way to access membrane dynamics. The biophysical factors underlying the genesis of this signal, however, are still poorly understood. With the use of data from a recent experimental study in a murine heart, a three-dimensional anisotropic bidomain model of the mouse ventricular free wall was developed to study the currents and potentials resulting from the application of a point mechanical load on cardiac tissue. The applied pressure is assumed to open nonspecific pressure-sensitive channels depolarizing the membrane, leading to monophasic currents at the electrode edge that give rise to the monophasic action potential ( MAP). The results show that the magnitude and the time course of the MAP are reproduced only for certain combinations of local or global intracellular and interstitial resistances that form a resting tissue length constant that, if applied over the entire domain, is smaller than that required to match the wave speed. The results suggest that the application of pressure not only causes local depolarization but also changes local tissue properties, both of which appear to play a critical role in the genesis of the MAP.
引用
收藏
页码:H1370 / H1381
页数:12
相关论文
共 38 条
[1]   Nitric oxide modulates cardiac Na+ channel via protein kinase A and protein kinase G [J].
Ahmmed, GU ;
Xu, YF ;
Dong, PH ;
Zhang, Z ;
Eiserich, J ;
Chiamvimonvat, N .
CIRCULATION RESEARCH, 2001, 89 (11) :1005-1013
[2]   DIRECTIONAL DIFFERENCES OF IMPULSE SPREAD IN TRABECULAR MUSCLE FROM MAMMALIAN HEART [J].
CLERC, L .
JOURNAL OF PHYSIOLOGY-LONDON, 1976, 255 (02) :335-346
[3]  
COLLI-FRANZONE P, 1993, J CARDIOVASC ELECTR, V4, P438
[4]   Correlation of repolarization of ventricular monophasic action potential with ECG in the murine heart [J].
Danik, S ;
Cabo, C ;
Chiello, C ;
Kang, S ;
Wit, AL ;
Coromilas, J .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2002, 283 (01) :H372-H381
[5]   High resolution optical mapping reveals conduction slowing in connexin43 deficient mice [J].
Eloff, BC ;
Lerner, DL ;
Yamada, KA ;
Schuessler, RB ;
Saffitz, JE ;
Rosenbaum, DS .
CARDIOVASCULAR RESEARCH, 2001, 51 (04) :681-690
[6]  
FASCIANO RW, 1995, CIRCULATION S1, V92, P299
[7]   LONG-TERM RECORDING OF MONOPHASIC ACTION-POTENTIALS FROM HUMAN ENDOCARDIUM [J].
FRANZ, MR .
AMERICAN JOURNAL OF CARDIOLOGY, 1983, 51 (10) :1629-1634
[8]   INVITRO VALIDATION OF A NEW CARDIAC CATHETER TECHNIQUE FOR RECORDING MONOPHASIC ACTION-POTENTIALS [J].
FRANZ, MR ;
BURKHOFF, D ;
SPURGEON, H ;
WEISFELDT, ML ;
LAKATTA, EG .
EUROPEAN HEART JOURNAL, 1986, 7 (01) :34-41
[9]   Current status of monophasic action potential recording: theories, measurements and interpretations [J].
Franz, MR .
CARDIOVASCULAR RESEARCH, 1999, 41 (01) :25-40
[10]  
GRODZINSKY AJ, 1983, CRIT REV BIOMED ENG, V9, P133