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哺乳动物神经元中的钙激活钾电流。

Calcium-activated potassium currents in mammalian neurons.

作者信息

Sah P, Davies P

机构信息

Division of Neuroscience, John Curtin School of Medical Research, Australian National University, Canberra, ACT.

出版信息

Clin Exp Pharmacol Physiol. 2000 Sep;27(9):657-63. doi: 10.1046/j.1440-1681.2000.03317.x.

Abstract
  1. Influx of calcium via voltage-dependent calcium channels during the action potential leads to increases in cytosolic calcium that can initiate a number of physiological processes. One of these is the activation of potassium currents on the plasmalemma. These calcium-activated potassium currents contribute to action potential repolarization and are largely responsible for the phenomenon of spike frequency adaptation. This refers to the progressive slowing of the frequency of discharge of action potentials during sustained injection of depolarizing current. In some cell types, this adaptation is so marked that despite the presence of depolarizing current, only a single spike (or a few spikes) is initiated. Following cessation of current injection, slow deactivation of calcium-activated potassium currents is also responsible for the prolonged hyperpolarization that often follows. 2. A number of macroscopic calcium-activated potassium currents that can be separated on the basis of kinetic and pharmacological criteria have been described in mammalian neurons. At the single channel level, several types of calcium-activated potassium channels also have been characterized. While for some macroscopic currents the underlying single channels have been unambiguously defined, for other currents the identity of the underlying channels is not clear. 3. In the present review we describe the properties of the known types of calcium-activated potassium currents in mammalian neurons and indicate the relationship between macroscopic currents and particular single channels.
摘要
  1. 动作电位期间通过电压依赖性钙通道的钙内流导致胞质钙增加,这可引发许多生理过程。其中之一是质膜上钾电流的激活。这些钙激活钾电流有助于动作电位复极化,并且在很大程度上导致了动作电位频率适应性现象。这指的是在持续注入去极化电流期间动作电位发放频率的逐渐减慢。在某些细胞类型中,这种适应性非常明显,以至于尽管存在去极化电流,也仅引发单个动作电位(或少数几个动作电位)。在停止电流注入后,钙激活钾电流的缓慢失活也是随后经常出现的延长的超极化的原因。2. 基于动力学和药理学标准可分离的多种宏观钙激活钾电流已在哺乳动物神经元中被描述。在单通道水平上,几种类型的钙激活钾通道也已被表征。虽然对于一些宏观电流,其潜在的单通道已被明确界定,但对于其他电流,潜在通道的身份尚不清楚。3. 在本综述中,我们描述了哺乳动物神经元中已知类型的钙激活钾电流的特性,并指出宏观电流与特定单通道之间的关系。

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