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早期和晚期复极化过程中的细胞间电相互作用。

Cell-to-cell electrical interactions during early and late repolarization.

作者信息

Spitzer Kenneth W, Pollard Andrew E, Yang Lin, Zaniboni Massimiliano, Cordeiro Jonathan M, Huelsing Delilah J

机构信息

Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, Salt Lake City, Utah, USA.

出版信息

J Cardiovasc Electrophysiol. 2006 May;17 Suppl 1:S8-S14. doi: 10.1111/j.1540-8167.2006.00379.x.

Abstract

Cardiac electrical activity is significantly affected by variations in the conductance of gap junctions that connect myocytes to one another. To better understand how intrinsic (single cell) electrical activity is modulated by junctional conductance, we used a two-myocyte coupling system in which physically separate cells were electrically coupled via a variable resistance set by the investigator. This brief review summarizes our findings regarding: (1) the effect of the early phase of action potential repolarization (phase 1) and transient outward current (I(to)) on action potential conduction, and (2) the effect of coupling on the action potential plateau (late repolarization). We found that inhibition of I(to) markedly increased the ability of action potentials to propagate from cell-to-cell when junctional conductance was low. Electrically coupling two myocytes together also suppressed their beat-to-beat variability in action potential duration and contraction. Similarly, early afterdepolarizations (EADS) were readily suppressed by connecting a normal myocyte to one generating EADs. This high sensitivity of the plateau to variations in junctional interactions arises from the large increase in membrane resistance that occurs during this phase of the action potential.

摘要

连接心肌细胞的间隙连接电导变化会显著影响心脏电活动。为了更好地理解连接电导如何调节内在(单细胞)电活动,我们使用了一种双心肌细胞耦合系统,其中物理上分离的细胞通过研究者设置的可变电阻进行电耦合。这篇简短综述总结了我们关于以下方面的研究结果:(1) 动作电位复极化早期(1期)和瞬时外向电流(I(to))对动作电位传导的影响,以及(2) 耦合对动作电位平台期(晚期复极化)的影响。我们发现,当连接电导较低时,抑制I(to)可显著增强动作电位在细胞间的传播能力。将两个心肌细胞电耦合在一起还可抑制它们动作电位持续时间和收缩的逐搏变异性。同样,通过将正常心肌细胞与产生早期后去极化(EADs)的心肌细胞相连,EADs很容易被抑制。动作电位平台期对连接相互作用变化的这种高敏感性源于动作电位该阶段发生的膜电阻大幅增加。

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