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Sub-cellular Electrical Heterogeneity Revealed by Loose Patch Recording Reflects Differential Localization of Sarcolemmal Ion Channels in Intact Rat Hearts

机译:散斑记录揭示的亚细胞电异质性反映了完整大鼠心脏中肌膜离子通道的差异化定位。

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摘要

The cardiac action potential (AP) is commonly recoded as an integral signal from isolated myocytes or ensembles of myocytes (with intracellular microelectrodes and extracellular macroelectrodes, respectively). These signals, however, do not provide a direct measure of activity of ion channels and transporters located in two major compartments of a cardiac myocyte: surface sarcolemma and the T-tubule system, which differentially contribute to impulse propagation and excitation-contraction (EC) coupling. In the present study we investigated electrical properties of myocytes within perfused intact rat heart employing loose patch recording with narrow-tip (2 μm diameter) extracellular electrodes. Using this approach, we demonstrated two distinct types of electric signals with distinct waveforms (single peak and multi-peak AP; AP1 and AP2, respectively) during intrinsic pacemaker activity. These two types of waveforms depend on the position of the electrode tip on the myocyte surface. Such heterogeneity of electrical signals was lost when electrodes of larger pipette diameter were used (5 or 10 μm), which indicates that the electric signal was assessed from a region of <5 μm. Importantly, both pharmacological and mathematical simulation based on transverse (T)-tubular distribution suggested that while the AP1 and the initial peak of AP2 are predominantly attributable to the fast, inward Na+ current in myocyte's surface sarcolemma, the late components of AP2 are likely representative of currents associated with L-type Ca2+ channel and Na+/Ca2+ exchanger (NCX) currents which are predominantly located in T-tubules. Thus, loose patch recording with narrow-tip pipette provides a valuable tool for studying cardiac electric activity on the subcellular level in the intact heart.
机译:心脏动作电位(AP)通常被重新编码为来自分离的心肌细胞或心肌细胞集合体的积分信号(分别带有细胞内微电极和细胞外大电极)。但是,这些信号不能直接测量位于心肌两个主要区室中的离子通道和转运蛋白的活性:表面肌膜层和T管系统,它们对脉冲传播和兴奋收缩(EC)的贡献不同。耦合。在本研究中,我们使用带有窄尖端(直径2μm)的细胞外电极的松散贴片记录,研究了灌注的完整大鼠心脏内心肌细胞的电学特性。使用这种方法,我们演示了在内部起搏器活动期间具有不同波形的两种不同类型的电信号(分别是单峰和多峰AP; AP1和AP2)。这两种波形取决于电极尖端在肌细胞表面上的位置。当使用较大移液管直径的电极(5或10μm)时,电信号的这种异质性消失了,这表明电信号是从<5μm的区域评估的。重要的是,基于横向(T)-肾小管分布的药理和数学模拟均表明,虽然AP1和AP2的初始峰主要归因于心肌细胞表面肉瘤的快速向内Na + 电流, AP2的晚期成分很可能代表与L型Ca 2 + 通道和Na + / Ca 2 + 交换器(NCX)相关的电流)的电流主要位于T管中。因此,用窄尖移液管进行松散的斑块记录提供了一个有价值的工具,可用于研究完整心脏中亚细胞水平的心脏电活动。

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