Nora Eccles Harrison Cardiovascular Research and Training Institute, University of Utah, 95 South 2000 East, Salt Lake City, UT 84112, USA.
Ann Biomed Eng. 2012 Apr;40(4):946-54. doi: 10.1007/s10439-011-0460-9. Epub 2011 Nov 4.
Voltage clamping is an important tool for measuring individual currents from an electrically active cell. However, it is difficult to isolate individual currents without pharmacological or voltage inhibition. Herein, we present a technique that involves inserting a noise function into a standard voltage step protocol, which allows one to characterize the unique frequency response of an ion channel at different step potentials. Specifically, we compute the fast Fourier transform for a family of current traces at different step potentials for the inward rectifying potassium channel, K(ir)2.1, and the channel encoding the cardiac fast sodium current, Na(v)1.5. Each individual frequency magnitude, as a function of voltage step, is correlated to the peak current produced by each channel. The correlation coefficient vs. frequency relationship reveals that these two channels are associated with some unique frequencies with high absolute correlation. The individual IV relationship can then be recreated using only the unique frequencies with magnitudes of high absolute correlation. Thus, this study demonstrates that ion channels may exhibit unique frequency responses.
电压钳位是测量电活性细胞中单个电流的重要工具。然而,如果没有药理学或电压抑制,很难分离单个电流。在此,我们提出了一种技术,该技术涉及在标准电压阶跃方案中插入噪声函数,这使得人们能够在不同的阶跃电位下表征离子通道的独特频率响应。具体来说,我们计算了内向整流钾通道 K(ir)2.1 和编码心脏快速钠电流 Na(v)1.5 的电流迹在不同阶跃电位下的一系列快速傅里叶变换。每个阶跃电位的单个频率幅度与每个通道产生的峰值电流相关。相关系数与频率的关系表明,这两个通道与一些具有高绝对相关性的独特频率有关。然后可以仅使用具有高绝对相关性的幅度的唯一频率来重现个体 IV 关系。因此,本研究表明离子通道可能表现出独特的频率响应。