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A model of the guinea-pig ventricular cardiac myocyte incorporating a transverse-axial tubular system

机译:豚鼠心室心肌细胞结合横轴管状系统的模型

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A model of the guinea-pig cardiac ventricular myocyte has been developed that includes a representation of the transverse-axial tubular system (TATS), including heterogeneous distribution of ion flux pathways between the surface and tubular membranes. The model reproduces frequency-dependent changes of action potential shape and intracellular ion concentrations and can replicate experimental data showing ion diffusion between the tubular lumen and external solution in guinea-pig myocytes. The model is stable at rest and during activity and returns to rested state after perturbation. Theoretical analysis and model simulations show that, due to tight electrical coupling, tubular and surface membranes behave as a homogeneous whole during voltage and current clamp (maximum difference 0.9 mV at peak tubular INa of -38 nA). However, during action potentials, restricted diffusion and ionic currents in TATS cause depletion of tubular Ca2+ and accumulation of tubular K+ (up to -19.8% and +3.4%, respectively, of bulk extracellular values, at 6 Hz). These changes, in turn, decrease ion fluxes across the TATS membrane and decrease sarcoplasmic reticulum (SR) Ca2+ load. Thus, the TATS plays a potentially important role in modulating the function of guinea-pig ventricular myocyte in physiological conditions.
机译:已经开发了一种豚鼠心脏心室肌细胞模型,该模型包括横轴管状系统(TATS)的表示,包括表面和管状膜之间离子流路径的不均匀分布。该模型再现了动作电位形状和细胞内离子浓度的频率依赖性变化,并且可以复制实验数据,显示豚鼠心肌细胞中管腔和外部溶液之间的离子扩散。该模型在休息和活动期间保持稳定,并在扰动后返回到休息状态。理论分析和模型仿真表明,由于紧密的电耦合,管状膜和表面膜在电压和电流钳制期间表现为均匀的整体(在峰值管状INa为-38 nA时最大差为0.9 mV)。但是,在动作电位期间,TATS中受限的扩散和离子电流会导致肾小管Ca2 +的消耗和肾小管K +的积累(在6 Hz时,分别高达19.8%和+ 3.4%的总体细胞外值)。这些变化继而降低了跨TATS膜的离子通量并降低了肌质网(SR)Ca2 +负荷。因此,TATS在调节生理条件下豚鼠心室肌​​细胞的功能中起着潜在的重要作用。

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