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用于分离细胞和急性脑片中原发性神经胶质细胞连接蛋白 1 通道特征鉴定的统一膜片钳技术方案。

Unified patch clamp protocol for the characterization of Pannexin 1 channels in isolated cells and acute brain slices.

机构信息

Department of Neuroanatomy and Molecular Brain Research, Ruhr-University Bochum, Bochum, Germany.

出版信息

J Neurosci Methods. 2011 Jul 15;199(1):15-25. doi: 10.1016/j.jneumeth.2011.04.016. Epub 2011 Apr 27.

Abstract

In the central nervous system, Pannexin 1 (Panx1) channels are implicated in a variety of physiological and pathological conditions. One of the prerequisites to enlighten the role of Panx1 is the development and standardization of reliable methods. Here, we address the applicability of voltage clamp protocols to identify Panx1 channel mediated currents in neurons of acutely dissected brain slices. We improved an established protocol and report on a modified paradigm that robustly evokes Panx1 channel currents. Crucial advances are the use of physiologic ion gradient conditions and a preconditioning step of depolarizing membrane potential ramps of long duration. This new paradigm provides significant impact on membrane current generation at hypo- and depolarized holding potential steps post voltage ramp preconditioning in heterologous expression systems and primary hippocampal CA1 neurons of mouse brain slices in vitro. Finally, we demonstrate that under these conditions the analysis of tail currents elicited by repolarization of the cells from preconditioning holding potential depolarization permits an independent method to isolate Panx1 mediated channel activity. In summary, this study provides a comprehensive methodological improvement in the biophysical analysis of Panx1 channels with a particular focus on investigations under physiological conditions in complex tissues.

摘要

在中枢神经系统中,连接蛋白 1(Panx1)通道与多种生理和病理状态有关。阐明 Panx1 作用的前提之一是开发和标准化可靠的方法。在这里,我们研究了电压钳技术在急性脑片神经元中鉴定 Panx1 通道介导电流的适用性。我们改进了已建立的方案,并报告了一种改进的方案,该方案可可靠地引发 Panx1 通道电流。关键的进展是使用生理离子梯度条件和长时间去极化膜电位斜坡的预处理步骤。这种新方案在异源表达系统和体外培养的小鼠大脑海马 CA1 神经元中,对电压斜坡预处理后在去极化和超极化保持电位阶跃下的膜电流产生具有重要影响。最后,我们证明在这些条件下,通过从预处理保持电位去极化中对细胞复极化引发的尾电流进行分析,可以独立的方法来分离 Panx1 介导的通道活性。总之,本研究提供了一种全面的方法学改进,用于对 Panx1 通道进行生物物理分析,特别关注在复杂组织中进行生理条件下的研究。

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