Dobretsov M, Stimers J R
Department of Pharmacology and Toxicology, University of Arkansas for Medical Sciences, Little Rock 72205, USA.
J Cardiovasc Electrophysiol. 1997 Jul;8(7):758-67. doi: 10.1111/j.1540-8167.1997.tb00834.x.
Steady-state Na/K pump current (Ip) in adult guinea pig ventricular myocytes was studied to determine the effect on the Na/K pump of transmembrane Na leak, membrane potential, and pipette Na concentration.
Using conventional whole cell, patch clamp techniques, Ip was identified as either Ko-sensitive or ouabain-sensitive current when most other membrane currents were inhibited. Control experiments showed that there were no Ko-sensitive currents other than Ip under the conditions of our experiments. Ip was found to be similar to that reported by others being voltage dependent between -130 and 0 mV and having a half maximal activation by Nai of 28 mM. Ouabain sensitivity was also measured, and it was found that there were two binding sites with the high affinity site comprising 5% to 10% of the total and having an apparent affinity 1000-fold higher than the low affinity site. Apparent affinity of both sites was shifted about 10-fold (higher affinity) by increasing Nai from 10 to 85 mM. When internally perfused with 0 Na solution, Na leak through the membrane was found to be linearly related to Na/K pump activity. In contrast to prior suggestions, Ip was not correlated with series resistance when there was a large transmembrane Na gradient.
These data suggest that, under conditions of high transmembrane Na gradient, Na leak through the membrane plays a significant role in determining Na/K pump activity.
研究成年豚鼠心室肌细胞中的稳态钠钾泵电流(Ip),以确定跨膜钠泄漏、膜电位和微管钠浓度对钠钾泵的影响。
使用传统的全细胞、膜片钳技术,当大多数其他膜电流被抑制时,Ip被识别为对钾敏感或对哇巴因敏感的电流。对照实验表明,在我们的实验条件下,除Ip外没有其他对钾敏感的电流。发现Ip与其他人报道的相似,在-130至0 mV之间呈电压依赖性,细胞内钠浓度为28 mM时半数最大激活。还测量了哇巴因敏感性,发现有两个结合位点,高亲和力位点占总数的5%至10%,其表观亲和力比低亲和力位点高1000倍。将细胞内钠浓度从10 mM增加到85 mM时,两个位点的表观亲和力均发生约10倍(更高亲和力)的偏移。当用无钠溶液进行细胞内灌注时,发现通过膜的钠泄漏与钠钾泵活性呈线性相关。与先前的观点相反,当存在大的跨膜钠梯度时,Ip与串联电阻无关。
这些数据表明,在高跨膜钠梯度条件下,通过膜的钠泄漏在决定钠钾泵活性方面起重要作用。