Department of Life Sciences, University of Parma, Italy, Parco Area delle Scienze 11A, 43124 Parma, Italy.
Europace. 2014 May;16(5):774-84. doi: 10.1093/europace/eut397.
To adopt a novel three-dimensional (3D) representation of cardiac action potential (AP) to compactly visualize dynamical properties of human cellular ventricular repolarization.
We have recently established a novel 3D representation of cardiac AP, which is based on the iterative measurement of instantaneous ion current-voltage profiles during the course of an AP. Such an approach has been originally developed on real patch-clamped ventricular cells, and subsequently improved in silico on several cardiac ventricular AP models of different mammals, and on models of different AP types of the human heart. We apply it here on two different models of human ventricular AP, and show that it compactly provides further insights into repolarization dynamics. The 3D representation of the AP includes equilibrium points during repolarization, and can be screened in terms of what we have shown to be a region, during late repolarization, when membrane conductance becomes negative and repolarization therefore auto-regenerative. We have called this time window auto-regenerative-repolarization-phase (ARRP).
In addition to previous findings obtained through the same procedure, we show here that 3D current-voltage-time representations of human ventricular AP allow compact visualization of dynamical properties, which are relevant for the physiology and pathology of ventricular repolarization. In particular, we suggest that the volume under the current surface corresponding to the ARRP might be used as a predictor of safety of repolarization, in single cells and during AP conduction in cell pairs.
采用新颖的三维(3D)心脏动作电位(AP)表示法,紧凑地可视化人心室复极化的动力学特性。
我们最近建立了一种新颖的心脏 AP 三维表示法,该方法基于在 AP 过程中对瞬时离子电流-电压曲线进行迭代测量。这种方法最初是在真实的膜片钳心室细胞上开发的,随后在几种不同哺乳动物的心脏心室 AP 模型以及人心室不同 AP 类型的模型上进行了计算机模拟改进。我们在此应用于两种不同的人心室 AP 模型,并显示它紧凑地提供了对复极化动力学的进一步见解。AP 的 3D 表示包括复极化期间的平衡点,并且可以根据我们显示的在膜电导变为负并且因此复极化自动再生的晚期复极化期间的区域进行筛选。我们将这个时间段称为自动再生复极化相(ARRP)。
除了通过相同程序获得的先前发现外,我们在此还表明,人心室 AP 的 3D 电流-电压-时间表示可以紧凑地可视化与心室复极化的生理学和病理学相关的动力学特性。特别是,我们建议,对应于 ARRP 的电流表面下的体积可以用作单个细胞和细胞对中 AP 传导时复极化安全性的预测因子。