Marks T N, Jones S W
Department of Physiology and Biophysics, Case Western Reserve University, Cleveland, Ohio 44106.
J Gen Physiol. 1992 Mar;99(3):367-90. doi: 10.1085/jgp.99.3.367.
We have investigated the gating kinetics of calcium channels in the A7r5 cell line at the level of single channels and whole cell currents, in the absence and presence of dihydropyridine (DHP) calcium channel agonists. Although latencies to first opening and macroscopic currents are strongly voltage dependent, analysis of amplitude histograms indicates that the primary open-closed transition is voltage independent. This suggests that the molecular mechanisms for voltage sensing and channel opening are distinct, but coupled. We propose a modified Monod-Wyman-Changeux (MWC) model for channel activation, where movement of a voltage sensor is analogous to ligand binding, and the closed and open channels correspond to inactive (T) and active (R) states. This model can account for the activation kinetics of the calcium channel, and is consistent with the existence of four homologous domains in the main subunit of the calcium channel protein. DHP agonists slow deactivation kinetics, shift the activation curve to more negative potentials with an increase in slope, induce intermingled fast and slow channel openings, and reduce the latency to first opening. These effects are predicted by the MWC model if we make the simple assumption that DHP agonists act as allosteric effectors to stabilize the open states of the channel.
我们在有无二氢吡啶(DHP)钙通道激动剂的情况下,在单通道和全细胞电流水平上研究了A7r5细胞系中钙通道的门控动力学。尽管首次开放的潜伏期和宏观电流强烈依赖电压,但对幅度直方图的分析表明,主要的开闭转换与电压无关。这表明电压传感和通道开放的分子机制是不同的,但相互关联。我们提出了一种用于通道激活的修正的莫诺德-怀曼-尚热(MWC)模型,其中电压传感器的移动类似于配体结合,而关闭和开放的通道分别对应于无活性(T)和活性(R)状态。该模型可以解释钙通道的激活动力学,并且与钙通道蛋白主要亚基中四个同源结构域的存在相一致。DHP激动剂减缓失活动力学,将激活曲线向更负的电位移动且斜率增加,诱导快速和慢速通道开放相互交织,并减少首次开放的潜伏期。如果我们做出简单的假设,即DHP激动剂作为变构效应剂来稳定通道的开放状态,那么这些效应可以由MWC模型预测。