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青蛙终板上普鲁卡因作用的电压跃变分析

Voltage jump analysis of procaine action at frog end-plate.

作者信息

Adams P R

出版信息

J Physiol. 1977 Jun;268(2):291-318. doi: 10.1113/jphysiol.1977.sp011858.

DOI:10.1113/jphysiol.1977.sp011858
PMID:301570
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1283665/
Abstract
  1. In the absence of procaine the end-plate conductance evoked by suberyldicholine increases exponentially to a new level following a step hyperpolarization. In the presence of procaine the suberyldicholine-evoked conductance first rapidly decreases and then slowly increases following a hyperpolarizing step. The fast relaxation has a time constant of approximately 1 msec, and the slow relaxation a time constant of 10-150 msec.2. The existence and sign of these two relaxations is predicted by a sequential model in which procaine enters and blocks open but not closed end-plate channels. The concentration dependence of the fast and slow relaxation time constants agrees well with the predictions of this model, and allows the apparent dissociation constant for binding of procaine within the open channel to be estimated at about 20 muM at -80 mV membrane potential.3. This apparent binding constant is voltage sensitive. It decreases e-fold for 50 mV hyperpolarization, suggesting that the procaine binding site is electrically half way through the channel.4. Procaine concentrations comparable to the dissociation constant for binding to open channels strongly depress the equilibrium current evoked by low suberyldicholine concentrations. This finding is not in accord with the sequential model.5. A cyclic model in which procaine binds to both closed and open channels explains well the equilibrium observations. The affinity of procaine for closed channels is similar to its affinity for open channels, and is also increased by hyperpolarization. This model also fits well the kinetic observations, if it is assumed that blocked channels open and close much more slowly than unblocked channels.6. The concentration dependence of the relaxation amplitudes disagrees with the predictions of the sequential model, but agrees well with the predictions of the cyclic model.7. No other model appears to explain the various observations as economically as the cyclic channel blocking model. If the model is correct the ;gate' controlling the end-plate channel must be in the inner half of the membrane.
摘要
  1. 在没有普鲁卡因的情况下,辛二酰胆碱诱发的终板电导在阶跃超极化后呈指数增加至新水平。在有普鲁卡因的情况下,辛二酰胆碱诱发的电导在超极化阶跃后首先迅速下降,然后缓慢增加。快速弛豫的时间常数约为1毫秒,缓慢弛豫的时间常数为10 - 150毫秒。

  2. 这两种弛豫的存在和符号由一个顺序模型预测,在该模型中,普鲁卡因进入并阻断开放但不阻断关闭的终板通道。快速和缓慢弛豫时间常数的浓度依赖性与该模型的预测非常吻合,并允许在 - 80 mV膜电位下估计开放通道内普鲁卡因结合的表观解离常数约为20 μM。

  3. 这个表观结合常数对电压敏感。膜电位超极化50 mV时它下降一个数量级,表明普鲁卡因结合位点在通道的电中间位置。

  4. 与开放通道结合的解离常数相当的普鲁卡因浓度强烈抑制低浓度辛二酰胆碱诱发的平衡电流。这一发现与顺序模型不一致。

  5. 一个普鲁卡因与关闭和开放通道都结合的循环模型很好地解释了平衡观察结果。普鲁卡因对关闭通道的亲和力与其对开放通道的亲和力相似,并且也因超极化而增加。如果假设被阻断的通道比未被阻断的通道打开和关闭慢得多,这个模型也很好地符合动力学观察结果。

  6. 弛豫幅度的浓度依赖性与顺序模型的预测不一致,但与循环模型的预测非常吻合。

  7. 没有其他模型似乎能像循环通道阻断模型那样经济地解释各种观察结果。如果该模型正确,控制终板通道的“门”必须在膜的内侧一半。

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