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Intracellular Na+ Modulates Pacemaking Activity in Murine Sinoatrial Node Myocytes: An In Silico Analysis

机译:细胞内Na +调节小鼠鼻窦节点肌细胞中的起搏活性:在硅分析中

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摘要

Background: The mechanisms underlying dysfunction in the sinoatrial node (SAN), the heart’s primary pacemaker, are incompletely understood. Electrical and Ca2+-handling remodeling have been implicated in SAN dysfunction associated with heart failure, aging, and diabetes. Cardiomyocyte [Na+]i is also elevated in these diseases, where it contributes to arrhythmogenesis. Here, we sought to investigate the largely unexplored role of Na+ homeostasis in SAN pacemaking and test whether [Na+]i dysregulation may contribute to SAN dysfunction. Methods: We developed a dataset-specific computational model of the murine SAN myocyte and simulated alterations in the major processes of Na+ entry (Na+/Ca2+ exchanger, NCX) and removal (Na+/K+ ATPase, NKA). Results: We found that changes in intracellular Na+ homeostatic processes dynamically regulate SAN electrophysiology. Mild reductions in NKA and NCX function increase myocyte firing rate, whereas a stronger reduction causes bursting activity and loss of automaticity. These pathologic phenotypes mimic those observed experimentally in NCX- and ankyrin-B-deficient mice due to altered feedback between the Ca2+ and membrane potential clocks underlying SAN firing. Conclusions: Our study generates new testable predictions and insight linking Na+ homeostasis to Ca2+ handling and membrane potential dynamics in SAN myocytes that may advance our understanding of SAN (dys)function.
机译:背景:心脏的主起搏器在窦房(SAN)中的功能障碍潜在功能障碍的机制不完全理解。电气和Ca2 + -handling重塑已经涉及与心力衰竭,老化和糖尿病相关的SAN功能障碍。心肌细胞[Na +] I也在这些疾病中升高,在那里它有助于心律失常。在这里,我们试图调查在圣起期训练中Na +稳态的大部分未开发的作用,并测试[Na +] I失调可能有助于SAN功能障碍。方法:我们开发了小鼠SAN肌细胞的数据集特定的计算模型,并在Na +进入(Na + / Ca2 +交换器,NCX)和去除(Na + / K + AtPase,NKA)中的主要过程中的模拟改变。结果:我们发现细胞内Na +稳态工艺的变化动态调节SAN电生理学。 NKA和NCX功能中的轻度降低增加了肌细胞射击率,而较强的减少导致爆裂活动和自动损失。由于SAN射击下面的CA2 +和膜电位时钟之间的反馈改变,这些病理表型模拟了在NCX和Ankyrin-B缺陷小鼠中实验观察的那些。结论:我们的研究产生了新的可测试预测和洞察力将Na + HoosoTasis与SAN肌细胞中的CA2 +处理和膜潜在动态联系起来,这可能推进我们对SAN(DYS)功能的理解。

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