ABSTRACT This work presents a discrete multidomain model that describes ionic diffusion pathways between connected cells and within the interstitium. Unlike classical models of impulse propagation, the intracellular and extracellular spaces are represented as spatially distinct volumeswith dynamic/static boundary conditions that electrically couple neighboring spaces. The model is used to investigate the impact of nonuniform geometrical and electrical properties of the interstitial space surrounding a fiber on conduction velocity and action potential waveshape. Comparison of the multidomain and bidomain models shows that although the conduction velocity is relatively insensitive to cases that confine 50 % of the membrane surface by narrow e...
We have used numerical methods for solving cable equations, combined with previously published mathe...
<p>Engineered monolayers created by using microabrasion and micropatterning methods have provided a ...
Bidomain equations are the standard way to model the electric potential in cardiac tissue. They are ...
AbstractThis work presents a discrete multidomain model that describes ionic diffusion pathways betw...
<p>Impulse propagation in cardiac muscle is determined not only by the excitable properties of the m...
The influence of interstitial or extracellular potentials on propagation usually has been ignored, o...
<p>Cardiac arrhythmias triggered by both reentrant and focal sources are closely correlated with reg...
Cable theory and active equivalent circuits have been used to simulate the propagation of action pot...
The intracellular and interstitial potentials associated with each cell or fiber in multicellular pr...
AbstractThe effect of gap junctional coupling, sodium ion channel distribution, and extracellular co...
Impulse propagation in biological tissues is known to be modulated by structural heterogeneity. In ...
When modelling tissue-level cardiac electrophysiology, a continuum approximation to the discrete cel...
The electrical source strength for an isolated, active, excitable fiber can be taken to be its trans...
We present a new mathematical model of the electric activity of the heart. In the standard bidomainm...
In this paper, we study the propagation of the cardiac action potential in a one-dimensional fiber, ...
We have used numerical methods for solving cable equations, combined with previously published mathe...
<p>Engineered monolayers created by using microabrasion and micropatterning methods have provided a ...
Bidomain equations are the standard way to model the electric potential in cardiac tissue. They are ...
AbstractThis work presents a discrete multidomain model that describes ionic diffusion pathways betw...
<p>Impulse propagation in cardiac muscle is determined not only by the excitable properties of the m...
The influence of interstitial or extracellular potentials on propagation usually has been ignored, o...
<p>Cardiac arrhythmias triggered by both reentrant and focal sources are closely correlated with reg...
Cable theory and active equivalent circuits have been used to simulate the propagation of action pot...
The intracellular and interstitial potentials associated with each cell or fiber in multicellular pr...
AbstractThe effect of gap junctional coupling, sodium ion channel distribution, and extracellular co...
Impulse propagation in biological tissues is known to be modulated by structural heterogeneity. In ...
When modelling tissue-level cardiac electrophysiology, a continuum approximation to the discrete cel...
The electrical source strength for an isolated, active, excitable fiber can be taken to be its trans...
We present a new mathematical model of the electric activity of the heart. In the standard bidomainm...
In this paper, we study the propagation of the cardiac action potential in a one-dimensional fiber, ...
We have used numerical methods for solving cable equations, combined with previously published mathe...
<p>Engineered monolayers created by using microabrasion and micropatterning methods have provided a ...
Bidomain equations are the standard way to model the electric potential in cardiac tissue. They are ...