Generation and escape of local waves from the boundary of uncoupled cardiac tissue

被引:10
作者
Biktashev, Vadim N. [2 ]
Arutunyan, Ara [1 ]
Sarvazyan, Narine A. [1 ]
机构
[1] George Washington Univ, Dept Physiol & Pharmacol, Washington, DC 20037 USA
[2] Univ Liverpool, Dept Math Sci, Liverpool L69 7ZL, Merseyside, England
基金
英国工程与自然科学研究理事会;
关键词
D O I
10.1529/biophysj.107.117630
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
We aim to understand the formation of abnormal waves of activity from myocardial regions with diminished cell-to-cell coupling. En route to this goal, we studied the behavior of a heterogeneous myocyte network in which a sharp coupling gradient was placed under conditions of increasing network automaticity. Experiments were conducted in monolayers of neonatal rat cardiomyocytes using heptanol and isoproterenol as means of altering cell-to-cell coupling and automaticity, respectively. Experimental findings were explained and expanded using a modified Beeler-Reuter numerical model. The data suggest that the combination of a heterogeneous substrate, a gradient of coupling, and an increase in oscillatory activity of individual cells creates a rich set of behaviors associated with self-generated spiral waves and ectopic sources. Spiral waves feature a. attened shape and a pin-unpin drift type of tip motion. These intercellular waves are action-potential based and can be visualized with either voltage or calcium transient measurements. Asource/ load mismatch on the interface between the boundary and well-coupled layers can lock wavefronts emanating from both ectopic sources and rotating waves within the inner layers of the coupling gradient. A numerical approach allowed us to explore how 1), the spatial distribution of cells, 2), the amplitude and dispersion of cell automaticity, and 3), the speed at which the coupling gradient moves in space affect wave behavior, including its escape into well-coupled tissue.
引用
收藏
页码:3726 / 3738
页数:13
相关论文
共 41 条
[11]  
Dhein S, 2006, ADV CARDIOL, V42, P198, DOI 10.1159/000092570
[12]   CARDIAC-ARRHYTHMIAS IN CHAGAS HEART-DISEASE [J].
ELIZARI, MV ;
CHIALE, PA .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 1993, 4 (05) :596-608
[13]   Contact fluorescence imaging of reentry in monolayers of cultured neonatal rat ventricular myocytes [J].
Entcheva, E ;
Lu, SN ;
Troppman, RH ;
Sharma, V ;
Tung, L .
JOURNAL OF CARDIOVASCULAR ELECTROPHYSIOLOGY, 2000, 11 (06) :665-676
[14]   Fluorescence imaging of electrical activity in cardiac cells using an all-solid-state system [J].
Entcheva, E ;
Kostov, Y ;
Tchernev, E ;
Tung, L .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2004, 51 (02) :333-341
[15]   Macroscopic optical mapping of excitation in cardiac cell networks with ultra-high spatiotemporal resolution [J].
Entcheva, Emilia ;
Bien, Harold .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 2006, 92 (02) :232-257
[16]   Functional reentry in cultured monolayers of neonatal rat cardiac cells [J].
Iravanian, S ;
Nabutovsky, Y ;
Kong, CR ;
Saha, S ;
Bursac, N ;
Tung, L .
AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2003, 285 (01) :H449-H456
[17]   The myocardial Na+-H+ exchange -: Structure, regulation, and its role in heart disease [J].
Karmazyn, M ;
Gan, XHT ;
Humphreys, RA ;
Yoshida, H ;
Kusumoto, K .
CIRCULATION RESEARCH, 1999, 85 (09) :777-786
[18]  
Keener J, 1998, MATH PHYSL
[19]   Arrhythmogenic right ventricular dysplasia/cardiomyopathy:: Screening, diagnosis, and treatment [J].
Kiès, P ;
Bootsma, M ;
Bax, J ;
Schalij, MJ ;
van der Wall, EE .
HEART RHYTHM, 2006, 3 (02) :225-234
[20]   Basic mechanisms of cardiac impulse propagation and associated arrhythmias [J].
Kléber, AG ;
Rudy, Y .
PHYSIOLOGICAL REVIEWS, 2004, 84 (02) :431-488