心肌细胞膜电位原型模型参数的估计

Q4 Agricultural and Biological Sciences International Journal Bioautomation Pub Date : 2021-05-14 DOI:10.7546/ijba.2022.26.3.000832
M. Aziz, Radostin D Simitev
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引用次数: 2

摘要

当代单细胞心脏电兴奋的现实数学模型非常详细。模型的复杂性导致了参数的不确定性、高计算成本和对机理理解的障碍。我们需要概念和数学上简单但生理上准确的简化模型。为此,我们考虑了一个单细胞心脏兴奋的原型模型,该模型复制了详细心脏模型的相空间几何形状,但同时具有简单的分段线性形式和相对低维的构型空间。为了使这个原型模型实际适用,我们开发并报告了一种鲁棒的方法,用于从详细的离子电流模型和实验肌细胞测量得出的单刺激动作电位的形态来估计其参数值。该程序应用于五个重要的测试用例,并与目标生物标记物取得了良好的一致性。计算了动作电位持续时间恢复曲线,并将其与目标测试模型和数据进行了比较,证明了微调原型模型对动态起搏行为的守恒性。一个原型模型可以准确地再现各种湿实验室和合成电生理数据,提供了许多特定的优势,如计算效率,研究中也证明了这一点。给出了模型和方法的开源数值代码。
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Estimation of Parameters for an Archetypal Model of Cardiomyocyte Membrane Potentials
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 applied to five significant test cases and an excellent agreement with target biomarkers is achieved. Action potential duration restitution curves are also computed and compared to those of the target test models and data, demonstrating conservation of dynamical pacing behaviour by the fine-tuned archetypal model. An archetypal model that accurately reproduces a variety of wet-lab and synthetic electrophysiology data offers a number of specific advantages such as computational efficiency, as also demonstrated in the study. Open-source numerical code of the models and methods used is provided.
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来源期刊
International Journal Bioautomation
International Journal Bioautomation Agricultural and Biological Sciences-Food Science
CiteScore
1.10
自引率
0.00%
发文量
22
审稿时长
12 weeks
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