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Effects of Na+ Current and Mechanogated Channels in Myofibroblasts on Myocyte Excitability and Repolarization

机译:Na +电流和成肌纤维细胞中机械化通道对肌细胞兴奋性和复极的影响

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摘要

Fibrotic remodeling, characterized by fibroblast phenotype switching, is often associated with atrial fibrillation and heart failure. This study aimed to investigate the effects on electrotonic myofibroblast-myocyte (Mfb-M) coupling on cardiac myocytes excitability and repolarization of the voltage-gated sodium channels (VGSCs) and single mechanogated channels (MGCs) in human atrial Mfbs. Mathematical modeling was developed from a combination of (1) models of the human atrial myocyte (including the stretch activated ion channel current, I SAC) and Mfb and (2) our formulation of currents through VGSCs (I Na_Mfb) and MGCs (I MGC_Mfb) based upon experimental findings. The effects of changes in the intercellular coupling conductance, the number of coupled Mfbs, and the basic cycle length on the myocyte action potential were simulated. The results demonstrated that the integration of I SAC, I Na_Mfb, and I MGC_Mfb reduced the amplitude of the myocyte membrane potential (V max) and the action potential duration (APD), increased the depolarization of the resting myocyte membrane potential (V rest), and made it easy to trigger spontaneous excitement in myocytes. For Mfbs, significant electrotonic depolarizations were exhibited with the addition of I Na_Mfb and I MGC_Mfb. Our results indicated that I SAC, I Na_Mfb, and I MGC_Mfb significantly influenced myocytes and Mfbs properties and should be considered in future cardiac pathological mathematical modeling.
机译:以成纤维细胞表型转换为特征的纤维化重塑通常与房颤和心力衰竭有关。这项研究旨在调查对人房性Mfbs中电渗性肌成纤维细胞-心肌(Mfb-M)偶联对心肌细胞兴奋性和电压门控钠通道(VGSCs)和单机械化通道(MGCs)复极化的影响。数学建模是根据以下方面的组合开发的:(1)人类心房肌细胞模型(包括拉伸激活的离子通道电流,I SAC)和Mfb,以及(2)我们通过VGSC(I Na_Mfb)和MGC(I MGC_Mfb)形成的电流)基于实验结果。模拟了细胞间偶联电导,偶联的Mfb的数量和基本周期长度对肌细胞动作电位变化的影响。结果表明I SAC,I Na_Mfb和I MGC_Mfb的整合降低了肌细胞膜电位的振幅(V max)和动作电位持续时间(APD),增加了静息肌细胞膜电位的去极化(V rest) ,并且很容易触发肌细胞的自发兴奋。对于Mfb,在添加I Na_Mfb和I MGC_Mfb时表现出明显的电子去极化。我们的结果表明,I SAC,I Na_Mfb和I MGC_Mfb显着影响了心肌细胞和Mfbs的特性,应在以后的心脏病理数学建模中予以考虑。

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