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收缩在心室肌细胞电生理模型中的实现及其通过期前收缩后增强的定量表征。

Implementation of Contraction to Electrophysiological Ventricular Myocyte Models, and Their Quantitative Characterization via Post-Extrasystolic Potentiation.

作者信息

Ji Yanyan Claire, Gray Richard A, Fenton Flavio H

机构信息

Department of Physics, Georgia Institute of Technology, Atlanta, Georgia, United States of America.

Office of Science and Engineering Laboratories, Center for Devices and Radiological Health, Food and Drug Administration, Silver Spring, Maryland, United States of America.

出版信息

PLoS One. 2015 Aug 28;10(8):e0135699. doi: 10.1371/journal.pone.0135699. eCollection 2015.

Abstract

Heart failure (HF) affects over 5 million Americans and is characterized by impairment of cellular cardiac contractile function resulting in reduced ejection fraction in patients. Electrical stimulation such as cardiac resynchronization therapy (CRT) and cardiac contractility modulation (CCM) have shown some success in treating patients with HF. Computer simulations have the potential to help improve such therapy (e.g. suggest optimal lead placement) as well as provide insight into the underlying mechanisms which could be beneficial. However, these myocyte models require a quantitatively accurate excitation-contraction coupling such that the electrical and contraction predictions are correct. While currently there are close to a hundred models describing the detailed electrophysiology of cardiac cells, the majority of cell models do not include the equations to reproduce contractile force or they have been added ad hoc. Here we present a systematic methodology to couple first generation contraction models into electrophysiological models via intracellular calcium and then compare the resulting model predictions to experimental data. This is done by using a post-extrasystolic pacing protocol, which captures essential dynamics of contractile forces. We found that modeling the dynamic intracellular calcium buffers is necessary in order to reproduce the experimental data. Furthermore, we demonstrate that in models the mechanism of the post-extrasystolic potentiation is highly dependent on the calcium released from the Sarcoplasmic Reticulum. Overall this study provides new insights into both specific and general determinants of cellular contractile force and provides a framework for incorporating contraction into electrophysiological models, both of which will be necessary to develop reliable simulations to optimize electrical therapies for HF.

摘要

心力衰竭(HF)影响着超过500万美国人,其特征是心肌细胞收缩功能受损,导致患者射血分数降低。心脏再同步治疗(CRT)和心脏收缩力调制(CCM)等电刺激在治疗HF患者方面已取得了一些成效。计算机模拟有潜力帮助改进此类治疗(例如,建议最佳电极放置位置),并深入了解潜在机制,这可能是有益的。然而,这些心肌细胞模型需要定量准确的兴奋 - 收缩偶联,以使电和收缩预测正确。虽然目前有近百个描述心脏细胞详细电生理学的模型,但大多数细胞模型不包括用于再现收缩力的方程,或者这些方程是临时添加的。在这里,我们提出了一种系统方法,通过细胞内钙将第一代收缩模型与电生理模型耦合,然后将所得模型预测与实验数据进行比较。这是通过使用早搏后起搏方案来完成的,该方案捕获了收缩力的基本动态。我们发现,为了再现实验数据,对动态细胞内钙缓冲进行建模是必要的。此外,我们证明在模型中,早搏后增强的机制高度依赖于肌浆网释放的钙。总体而言,这项研究为细胞收缩力的特定和一般决定因素提供了新的见解,并为将收缩纳入电生理模型提供了框架,这两者对于开发可靠的模拟以优化HF的电治疗都是必要的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3615/4552858/d6a4c543b773/pone.0135699.g001.jpg

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