[Simultaneous measurements of electrical coupling and action potential transfer in pairs of ventricular cardiomyocytes].

A Rossini, M Zaniboni, F Cacciani, D Stilli, E Musso
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Abstract

Spread and modulation of electrical activity in cardiac tissue requires intercellular transfer of current via gap junctions, specialised regions of densely packed ionic channels. Electrotonic interaction is determined not merely by intercellular electrical resistance (Rj) but rather by the interplay of Rj and sarcolemmal passive and active electrical properties (Zaniboni et al., Spitzer et al.). In this work we combined a well established protocol to measure Rj in cell pairs (Weingart e Maurer) with a stimulation protocol which allowed to simultaneously study parameters relative to action potential transfer during sequential stimulation. Current clamp experiments, performed on cardiomyocyte pairs held in double-patch configuration, allowed to simultaneously monitor, at a relatively high frequency (1 Hz), membrane resistance (Rm), resting potential (Vm), maximum depolarization rate (dv/dtmax) and time to peak of dv/dtmax in both cells as well as Rj. Spontaneous electrical uncoupling was observed in guinea pig cell pairs with little or no effect on action potential transfer. Pharmacological uncoupling with 40 microM beta-glycyrrhetinic acid reached, in one case, a much higher level of Rj and dramatically increased time delay for action potential appearance. When only Rj was measured over a short time interval after approximately two minutes from cell-attachments, values of Rj approximately 40 M omega in rat cell pairs (n = 20) and Rj approximately 15 M omega in guinea pig cell pairs (n = 24) were obtained. The possibility of monitoring simultaneously active and intercellular/cellular passive electrical properties makes this protocol particularly suitable to study dynamic changes in Rj during action potential transfer.

[同时测量成对心室心肌细胞的电偶联和动作电位传递]。
心脏组织中电活动的扩散和调节需要电流通过间隙连接(密集排列的离子通道的专门区域)进行细胞间转移。电紧张相互作用不仅由细胞间电阻(Rj)决定,而且由Rj与肌层被动和主动电特性的相互作用决定(Zaniboni et al., Spitzer et al.)。在这项工作中,我们结合了一个完善的方案来测量细胞对中的Rj (Weingart e Maurer)和一个刺激方案,该方案允许在顺序刺激期间同时研究与动作电位转移相关的参数。电流钳实验是在双膜片结构的心肌细胞对上进行的,允许在相对较高的频率(1hz)下同时监测膜电阻(Rm)、静息电位(Vm)、最大去极化率(dv/dtmax)和两个细胞以及Rj的dv/dtmax峰值时间。在豚鼠细胞对中观察到自发电解偶联,对动作电位转移几乎没有影响。在一个案例中,与40微米β -甘草次酸的药理学解偶联达到了更高的Rj水平,并显着增加了动作电位出现的时间延迟。当仅在细胞附着约2分钟后的短时间间隔内测量Rj时,大鼠细胞对(n = 20)的Rj值约为40 M ω,豚鼠细胞对(n = 24)的Rj值约为15 M ω。同时监测主动和细胞间/细胞被动电学性质的可能性使该方案特别适合于研究动作电位传递过程中Rj的动态变化。
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