A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell

Excitability is a phenomenon seen in different kinds of systems, e.g., biological systems. Cardiac cells and neurons are well-known examples of excitable biological systems. Excitability as a crucial property should be involved in mathematical models of cardiac cells, along with the other biological...

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Main Authors: S. H. Sabzpoushan, A. Ghajarjazy
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2020/3704523
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spelling doaj-b00750cb54ae4250bb9bf255cbfc27642020-11-25T03:28:53ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472020-01-01202010.1155/2020/37045233704523A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac CellS. H. Sabzpoushan0A. Ghajarjazy1Department of Biomedical Engineering, Iran University of Science and Technology (IUST), Tehran 16846-13114, IranDepartment of Biomedical Engineering, Iran University of Science and Technology (IUST), Tehran 16846-13114, IranExcitability is a phenomenon seen in different kinds of systems, e.g., biological systems. Cardiac cells and neurons are well-known examples of excitable biological systems. Excitability as a crucial property should be involved in mathematical models of cardiac cells, along with the other biological properties. Excitability of mathematical cardiac-cell models is usually investigated in the phase plane (or the phase space) which is not applicable with simple mathematical analysis. Besides, the possible roles of each model parameter in the excitability property cannot be investigated explicitly and independently using phase plane analysis. In this paper, we present a new graphical-based method for designing excitability of a single cardiac cell. Each parameter in the presented approach not only has electrophysiological interpretation but also its role in regulating excitability is evident and can be analysed explicitly. Our approach is simpler and more tractable by mathematical analysis than the phase plane method. Another advantage of our approach is that the other important feature of the cardiac cell action potential, i.e., plateau morphology, can be designed and regulated separately from the excitability property. To evaluate our presented approach, we applied it for simulating excitability in well-known complex electrophysiological models of ventricular and atrial cells. Results show that our model can simulate excitability and time evolution of the plateau phase simultaneously.http://dx.doi.org/10.1155/2020/3704523
collection DOAJ
language English
format Article
sources DOAJ
author S. H. Sabzpoushan
A. Ghajarjazy
spellingShingle S. H. Sabzpoushan
A. Ghajarjazy
A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
Mathematical Problems in Engineering
author_facet S. H. Sabzpoushan
A. Ghajarjazy
author_sort S. H. Sabzpoushan
title A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
title_short A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
title_full A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
title_fullStr A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
title_full_unstemmed A Graphical-Based Mathematical Model for Simulating Excitability in a Single Cardiac Cell
title_sort graphical-based mathematical model for simulating excitability in a single cardiac cell
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2020-01-01
description Excitability is a phenomenon seen in different kinds of systems, e.g., biological systems. Cardiac cells and neurons are well-known examples of excitable biological systems. Excitability as a crucial property should be involved in mathematical models of cardiac cells, along with the other biological properties. Excitability of mathematical cardiac-cell models is usually investigated in the phase plane (or the phase space) which is not applicable with simple mathematical analysis. Besides, the possible roles of each model parameter in the excitability property cannot be investigated explicitly and independently using phase plane analysis. In this paper, we present a new graphical-based method for designing excitability of a single cardiac cell. Each parameter in the presented approach not only has electrophysiological interpretation but also its role in regulating excitability is evident and can be analysed explicitly. Our approach is simpler and more tractable by mathematical analysis than the phase plane method. Another advantage of our approach is that the other important feature of the cardiac cell action potential, i.e., plateau morphology, can be designed and regulated separately from the excitability property. To evaluate our presented approach, we applied it for simulating excitability in well-known complex electrophysiological models of ventricular and atrial cells. Results show that our model can simulate excitability and time evolution of the plateau phase simultaneously.
url http://dx.doi.org/10.1155/2020/3704523
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