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培养的海马星形胶质细胞中失活钾离子通道的复杂表达与定位

Complex expression and localization of inactivating Kv channels in cultured hippocampal astrocytes.

作者信息

Bekar Lane K, Loewen Matthew E, Cao Kun, Sun Xianfeng, Leis Jerome, Wang Rui, Forsyth George W, Walz Wolfgang

机构信息

Department of Physiology, University of Saskatchewan, Rm B39 Health Sciences Bldg, Saskatoon, SK, S7N 5E5, Canada.

出版信息

J Neurophysiol. 2005 Mar;93(3):1699-709. doi: 10.1152/jn.00850.2004.

Abstract

Voltage-gated potassium channels are well established as critical for setting action potential frequency, membrane potential, and neurotransmitter release in neurons. However, their role in the "nonexcitable" glial cell type is yet to be fully understood. We used whole cell current kinetics, pharmacology, immunocytochemistry, and RT-PCR to characterize A-type current in hippocampal astrocyte cultures to better understand its function. Pharmacological analysis suggests that approximately 70, 10, and <5% of total A current is associated with Kv4, Kv3, and Kv1 channels, respectively. In addition, pharmacology and kinetics provide evidence for a significant contribution of KChIP accessory proteins to astrocytic A-channel composition. Localization of the Shaw Kv3.4 channel to astrocytic processes and the Shal Kv4.3 channel to soma suggest that these channels serve a specific function. Given this complex A-type channel expression pattern, we assessed the role of A currents in membrane voltage oscillations in response to current injections. Although TEA-sensitive delayed-rectifying currents are involved in the extent of repolarization, 4-AP-sensitive A currents serve to increase the rate. As in neurons, this effect may enable astrocytes to respond rapidly to high-frequency synaptic events. Our results indicate that hippocampal astrocytes in vitro express multiple A-type Kv channel alpha-subunits with accessory, possibly Ca(2+)-sensitive, cytoplasmic subunits that appear to be specifically localized to subcellular membrane compartments. Function of these channels remains to be determined in a physiological setting. However, this study suggests that they enable astrocytes to respond rapidly with membrane voltage oscillations to high-frequency incoming signals, possibly synchronizing astrocyte function to neuronal activity.

摘要

电压门控钾通道对于设定神经元的动作电位频率、膜电位和神经递质释放至关重要,这一点已得到充分证实。然而,它们在“非兴奋性”胶质细胞类型中的作用尚未完全明确。我们运用全细胞电流动力学、药理学、免疫细胞化学和逆转录聚合酶链反应(RT-PCR)来表征海马星形胶质细胞培养物中的A型电流,以更好地理解其功能。药理学分析表明,总A型电流中分别约有70%、10%和<5%与Kv4、Kv3和Kv1通道相关。此外,药理学和动力学为KChIP辅助蛋白对星形胶质细胞A型通道组成的显著贡献提供了证据。Shaw Kv3.4通道定位于星形胶质细胞的突起,而Shal Kv4.3通道定位于胞体,这表明这些通道具有特定功能。鉴于这种复杂的A型通道表达模式,我们评估了A型电流在响应电流注入时对膜电压振荡的作用。尽管TEA敏感的延迟整流电流参与复极化的程度,但4-AP敏感的A型电流有助于提高复极化速率。与神经元一样,这种效应可能使星形胶质细胞能够对高频突触事件做出快速反应。我们的结果表明,体外培养的海马星形胶质细胞表达多种A型Kv通道α亚基以及辅助的、可能对Ca(2+)敏感的胞质亚基,这些亚基似乎特异性定位于亚细胞膜区室。这些通道的功能仍有待在生理环境中确定。然而,这项研究表明,它们使星形胶质细胞能够通过膜电压振荡对高频传入信号做出快速反应,可能使星形胶质细胞功能与神经元活动同步。

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