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Monitoring Voltage-Dependent Charge Displacement of Shaker B-IR K+ Ion Channels Using Radio Frequency Interrogation

机译:使用射频询问监测振荡器B-IR K +离子通道的电压相关电荷位移

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摘要

Here we introduce a new technique that probes voltage-dependent charge displacements of excitable membrane-bound proteins using extracellularly applied radio frequency (RF, 500 kHz) electric fields. Xenopus oocytes were used as a model cell for these experiments, and were injected with cRNA encoding Shaker B-IR (ShB-IR) K+ ion channels to express large densities of this protein in the oocyte membranes. Two-electrode voltage clamp (TEVC) was applied to command whole-cell membrane potential and to measure channel-dependent membrane currents. Simultaneously, RF electric fields were applied to perturb the membrane potential about the TEVC level and to measure voltage-dependent RF displacement currents. ShB-IR expressing oocytes showed significantly larger changes in RF displacement currents upon membrane depolarization than control oocytes. Voltage-dependent changes in RF displacement currents further increased in ShB-IR expressing oocytes after ∼120 µM Cu2+ addition to the external bath. Cu2+ is known to bind to the ShB-IR ion channel and inhibit Shaker K+ conductance, indicating that changes in the RF displacement current reported here were associated with RF vibration of the Cu2+-linked mobile domain of the ShB-IR protein. Results demonstrate the use of extracellular RF electrodes to interrogate voltage-dependent movement of charged mobile protein domains — capabilities that might enable detection of small changes in charge distribution associated with integral membrane protein conformation and/or drug–protein interactions.
机译:在这里,我们介绍了一种新技术,该技术利用细胞外施加的射频(RF,500 kHz)电场探测可激发的膜结合蛋白的电压依赖性电荷位移。将非洲爪蟾卵母细胞用作这些实验的模型细胞,并注入编码Shaker B-IR(ShB-IR)K + 离子通道的cRNA,以在卵母细胞膜中表达该蛋白的高密度。使用两电极电压钳(TEVC)来控制全细胞膜电位并测量依赖通道的膜电流。同时,施加RF电场以扰动TEVC水平附近的膜电位,并测量与电压相关的RF位移电流。表达ShB-IR的卵母细胞在膜去极化后,RF置换电流的变化明显大于对照卵母细胞。向外部浴中添加约120 µM Cu 2 + 后,表达ShB-IR的卵母细胞中RF位移电流的电压依赖性变化进一步增加。已知Cu 2 + 与ShB-IR离子通道结合并抑制Shaker K + 电导,表明此处报道的RF位移电流的变化与RF振动有关ShB-IR蛋白的Cu 2 + 连接的移动域的结构。结果表明,使用细胞外RF电极可查询带电的移动蛋白结构域的电压依赖性运动,这种能力可能使检测与整体膜蛋白构象和/或药物-蛋白相互作用相关的电荷分布小变化。

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