Balser J R, Roden D M, Bennett P B
Department of Pharmacology, Vanderbilt University School of Medicine, Nashville, Tennessee 37232.
Biophys J. 1991 Jan;59(1):150-61. doi: 10.1016/S0006-3495(91)82207-X.
The effects of quinidine on single inward rectifier K channels were investigated in cell-attached patches with 4.5 mM pipette potassium concentrations. Under these conditions, the single-channel slope conductance of the predominant conductance level of the inward rectifier channels was 3.9 +/- 0.3 pS at membrane potentials between -75 and -150 mV. Quinidine reversibly decreased the likelihood of channel opening to the main conductance level without reducing the single-channel conductance, and also reduced the probability of channel opening to subconducting levels. Quinidine had no significant effects on the channel open times, and the inhibition of channel opening was only slightly voltage dependent over the range of membrane potentials investigated. Quinidine induced a complete cessation of channel openings for brief periods (up to 2 min), suggesting that quinidine promoted occupancy of a state from which opening was less likely. Occasional long periods (up to an hour) with an absence of channel activity were also observed but quinidine did not appear to promote this behavior. The data suggest that quinidine decreases the ability of the channel to enter both main and subconducting states. By binding to a particular closed conformation of the channel, quinidine could reduce the likelihood of channel opening. The main features of these observations could be accounted for using the three-state kinetic model proposed by Sakmann, B. and G. Trube (1984b. J. Physiol. [Lond.]. 347:659-683.) with quinidine binding to the middle closed state.
在吸管内钾离子浓度为4.5 mM的细胞贴附式膜片上,研究了奎尼丁对单个内向整流钾通道的作用。在这些条件下,内向整流通道主要电导水平的单通道斜率电导在膜电位为-75至-150 mV之间时为3.9±0.3 pS。奎尼丁可逆地降低通道开放至主要电导水平的可能性,而不降低单通道电导,并且还降低通道开放至亚电导水平的概率。奎尼丁对通道开放时间无显著影响,在所研究的膜电位范围内,通道开放的抑制仅轻微依赖电压。奎尼丁可在短时间内(长达2分钟)完全停止通道开放,提示奎尼丁促使通道处于一种不太可能开放的状态。还观察到偶尔出现长达一小时的无通道活动期,但奎尼丁似乎并未促使这种情况发生。数据表明,奎尼丁降低通道进入主要和亚电导状态的能力。通过与通道的特定关闭构象结合,奎尼丁可降低通道开放的可能性。这些观察结果的主要特征可以用Sakmann, B.和G. Trube(1984b. J. Physiol. [Lond.]. 347:659 - 683.)提出的三态动力学模型来解释,其中奎尼丁与中间关闭状态结合。