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心肌跨膜电位和电流的测量:一种新的电压钳方法。

Measurement of transmembrane potential and current in cardiac muscle: a new voltage clamp method.

作者信息

Goldman Y, Morad M

出版信息

J Physiol. 1977 Jul;268(3):613-54. doi: 10.1113/jphysiol.1977.sp011875.

Abstract
  1. A single sucrose gap voltage clamp technique was developed to correct for artifacts of 'leakage' corrent and extracellular resistance making possible improved measurement of membrane current and membrane potential in cardiac muscle. 2. A fourth compartment termed 'guard gap' was added to the sucrose gap. The guard gap is maintained at the same potential as the Reinger pool, so that no extracellular leakage current can flow into the Ringer pool. Comparison of experimental results with the predictions of an idealized cable model indicates that the guard gap is effective in trapping leakage current. 3. The slow charging of membrane capacitance due to extracellular series resistance was accelerated by applying a 'pre-pulse' of the command potential past the final voltage clamp value. 4. A second technique, termed 'chopped current pulse clamp', was used to compensate for the extracellular resistance throughout the voltage clamp step. The applied current was turned on and off at a frequency of 0-5-2 kHz. The membrane potential sampled during the zero current phase was fed back through the clamp loop. 5. With either of these compensation techniques, the voltage and current traces settle to effectively constant values within 2-4 msec after initiation of a hyperpolarizing voltage clamp step from rest. 6. The membrane conductance measured by the prepulse and chopped current-pulse technique are equal and confirm a higher conductance at rest than during the plateau of the action potential. 7. The 'instantaneous' current-voltage relation of the membrane is linear during the plateau of the frog ventricular action potential.
摘要
  1. 开发了一种单一蔗糖间隙电压钳技术,以校正“泄漏”电流和细胞外电阻的伪迹,从而能够改进对心肌膜电流和膜电位的测量。2. 在蔗糖间隙中增加了一个称为“保护间隙”的第四隔室。保护间隙保持与林格液池相同的电位,这样细胞外泄漏电流就不会流入林格液池。将实验结果与理想化电缆模型的预测进行比较表明,保护间隙在捕获泄漏电流方面是有效的。3. 通过施加超过最终电压钳值的指令电位“预脉冲”,加速了由于细胞外串联电阻导致的膜电容缓慢充电。4. 第二种技术,称为“斩波电流脉冲钳”,用于在整个电压钳步骤中补偿细胞外电阻。施加的电流以0.5 - 2千赫的频率开启和关闭。在零电流阶段采样的膜电位通过钳制回路反馈。5. 使用这两种补偿技术中的任何一种,在从静息状态开始超极化电压钳步骤后的2 - 4毫秒内,电压和电流轨迹有效地稳定到恒定值。6. 通过预脉冲和斩波电流脉冲技术测量的膜电导相等,并证实静息时的电导高于动作电位平台期的电导。7. 在青蛙心室动作电位的平台期,膜的“瞬时”电流 - 电压关系是线性的。

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