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计算模型预测ERG电流在多巴胺能神经元复极化平台电位中的作用:对神经元活动调节的影响。

Computational model predicts a role for ERG current in repolarizing plateau potentials in dopamine neurons: implications for modulation of neuronal activity.

作者信息

Canavier Carmen C, Oprisan Sorinel A, Callaway Joseph C, Ji Huifang, Shepard Paul D

机构信息

Neuroscience Center, Louisiana State University Health Sciences Center, New Orleans 70112, USA.

出版信息

J Neurophysiol. 2007 Nov;98(5):3006-22. doi: 10.1152/jn.00422.2007. Epub 2007 Aug 15.

Abstract

Blocking the small-conductance (SK) calcium-activated potassium channel promotes burst firing in dopamine neurons both in vivo and in vitro. In vitro, the bursting is unusual in that spiking persists during the hyperpolarized trough and frequently terminates by depolarization block during the plateau. We focus on the underlying plateau potential oscillation generated in the presence of both apamin and TTX, so that action potentials are not considered. We find that although the plateau potentials are mediated by a voltage-gated Ca(2+) current, they do not depend on the accumulation of cytosolic Ca(2+), then use a computational model to test the hypothesis that the slowly voltage-activated ether-a-go-go-related gene (ERG) potassium current repolarizes the plateaus. The model, which includes a material balance on calcium, is able to reproduce the time course of both membrane potential and somatic calcium concentration, and can also mimic the induction of plateau potentials by the calcium chelator BAPTA. The principle of separation of timescales was used to gain insight into the mechanisms of oscillation and its modulation using nullclines in the phase space. The model predicts that the plateau will be elongated and ultimately result in a persistent depolarization as the ERG current is reduced. This study suggests that the ERG current may play a role in burst termination and the relief of depolarization block in vivo.

摘要

阻断小电导(SK)钙激活钾通道可促进体内和体外多巴胺神经元的爆发式放电。在体外,这种爆发式放电很不寻常,因为在超极化波谷期间仍有尖峰放电持续,且在平台期经常因去极化阻滞而终止。我们关注在蜂毒明肽和河豚毒素同时存在的情况下产生的潜在平台期电位振荡,因此不考虑动作电位。我们发现,尽管平台期电位由电压门控钙电流介导,但它们并不依赖于胞质钙的积累,然后使用计算模型来检验以下假设:缓慢电压激活的外向整流钾电流(ERG)使平台期复极化。该模型包括钙的物质平衡,能够重现膜电位和体细胞钙浓度的时间进程,还能模拟钙螯合剂BAPTA诱导平台期电位的过程。利用时间尺度分离原理,通过相空间中的零倾线来深入了解振荡及其调制机制。该模型预测,随着ERG电流减小,平台期将延长并最终导致持续去极化。这项研究表明,ERG电流可能在体内爆发式放电终止和去极化阻滞缓解中发挥作用。

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