Estimation of Parameters for an Archetypal Model of Cardiomyocyte Membrane Potentials
Muhamad H.N. Aziz, Radostin D. Simitev

TL;DR
This paper introduces a simplified, physiologically accurate archetypal model of cardiac cell electrical activity, along with a robust parameter estimation method, enabling efficient simulation and analysis of cardiac electrophysiology.
Contribution
The authors develop a simple, phase-space consistent archetypal cardiac model and a robust parameter estimation method from experimental and detailed model data.
Findings
High agreement with target biomarkers
Accurate reproduction of action potential morphology
Conservation of dynamical pacing behavior
Abstract
Contemporary realistic mathematical models of single-cell cardiac electrical excitation are immensely detailed. Model complexity leads to parameter uncertainty, high computational cost and barriers to mechanistic understanding. There is a need for reduced models that are conceptually and mathematically simple but physiologically accurate. To this end, we consider an archetypal model of single-cell cardiac excitation that replicates the phase-space geometry of detailed cardiac models, but at the same time has a simple piecewise-linear form and a relatively low-dimensional configuration space. In order to make this archetypal model practically applicable, we develop and report a robust method for estimation of its parameter values from the morphology of single-stimulus action potentials derived from detailed ionic current models and from experimental myocyte measurements. The procedure is…
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Taxonomy
TopicsCardiac electrophysiology and arrhythmias · ECG Monitoring and Analysis · Analog and Mixed-Signal Circuit Design
