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绵羊浦肯野纤维中起搏电流(iK2)反转电位的测量及其意义

Measurement and significance of the reversal potential for the pace-maker current (iK2) in sheep Purkinje fibres.

作者信息

DiFrancesco D, Ohba M, Ojeda C

出版信息

J Physiol. 1979 Dec;297(0):135-62. doi: 10.1113/jphysiol.1979.sp013032.

Abstract
  1. The apparent reversal potential (Erev) of the pace-maker current (iK2) is found to depend on the experimental protocol used for its measurement. Evidence is presented showing that depolarizing (hyperpolarizing) pulses given before a test hyperpolarization used to determine Erev, shift Erev to more negative (positive) values. These shifts are opposite to those expected if the only effect of pre-pulses were to change the concentration of potassium in extracellular clefts ([K]c) via accumulation and depletion processes. 2. This effect is shown to be due to the fact that Erev is dependent on s0, the degree of activation of iK2 at the start of the test hyperpolarization. 3. When a suitable protocol is used, depletion of cleft K can be demonstrated to take place during a large hyperpolarization. Changes in the level of [K]c induced by pre-pulses must therefore also affect the Erev determination. 4. A simplified three-compartment model has been used to investigate how K accumulation and depletion can affect the time course of iK2, with particular reference to the problem of Erev determination. Computed examples show that the model is able to reproduce the main features of the time course of iK2 recorded near its reversal potential and the changes induced by pre-pulses on Erev measuremnet. By contrast, simulation on a linear cable model rules out the possibility that such results are due to voltage non-uniformity. 5. The three-compartment model predicts that the measured value of Erev differs from EK2 for two reasons: (1) when the recorded current trace is flat iK2 is still outward and decaying, and (2) the K equilibrium potential shifts to more negative values while the test hyperpolarization is applied. 6. The finding that Erev is directly affected by changes in s at the beginning of the test pulse is discussed in relation to the action of agents (such as Ca2+, H+, salicylate, adrenaline and ouabain) which are found to shift both the s00 curve and Erev.
摘要
  1. 发现起搏电流(iK2)的表观反转电位(Erev)取决于用于测量它的实验方案。有证据表明,在用于确定Erev的测试超极化之前施加的去极化(超极化)脉冲会使Erev向更负(正)的值移动。这些移动与预脉冲的唯一作用是通过积累和消耗过程改变细胞外间隙中钾的浓度([K]c)时预期的移动相反。2. 这种效应被证明是由于Erev取决于s0,即测试超极化开始时iK2的激活程度。3. 当使用合适的方案时,可以证明在大的超极化期间细胞外间隙K会发生消耗。因此,预脉冲引起的[K]c水平变化也必然会影响Erev的测定。4. 一个简化的三室模型已被用于研究K的积累和消耗如何影响iK2的时间进程,特别涉及Erev测定问题。计算示例表明,该模型能够重现接近其反转电位时记录的iK2时间进程的主要特征以及预脉冲对Erev测量的影响。相比之下,在线性电缆模型上的模拟排除了这种结果是由于电压不均匀性的可能性。5. 三室模型预测Erev的测量值与EK2不同有两个原因:(1)当记录的电流轨迹平坦时,iK2仍向外且在衰减,(2)在施加测试超极化时K平衡电位向更负的值移动。6. 关于试剂(如Ca2+、H+、水杨酸盐、肾上腺素和哇巴因)的作用,讨论了Erev在测试脉冲开始时直接受s变化影响这一发现,这些试剂被发现会使s00曲线和Erev都发生移动。

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Pflugers Arch. 1969 Jun 19;309(4):356-61. doi: 10.1007/BF00587758.
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