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电压成像以及电压和激动剂激活电导对小脑浦肯野细胞胞体-树突电压偶联影响的模拟

Voltage-imaging and simulation of effects of voltage- and agonist-activated conductances on soma-dendritic voltage coupling in cerebellar Purkinje cells.

作者信息

Staub C, De Schutter E, Knöpfel T

机构信息

Federal Institute of Technology Zürich, Department of Theoretical Physics, Switzerland.

出版信息

J Comput Neurosci. 1994 Dec;1(4):301-11. doi: 10.1007/BF00961878.

Abstract

We investigated the spread of membrane voltage changes from the soma into the dendrites of cerebellar Purkinje cells by using voltage-imaging techniques in combination with intracellular recordings and by performing computer simulations using a detailed compartmental model of a cerebellar Purkinje cell. Fluorescence signals from single Purkinje cells in cerebellar cultures stained with the styryl dye di-4-ANEPPS were detected with a 10 x 10 photodiode array and a charge coupled device (CCD). Fluorescence intensity decreased and increased with membrane depolarization and hyperpolarization, respectively. The relation between fractional fluorescence change (delta F/F) and membrane potential could be described by a linear function with a slope of up to -3%/100 mV. Hyperpolarizing and depolarizing voltage jumps applied to Purkinje cells voltage-clamped with an intrasomatic recording electrode induced dendritic dye signals, demonstrating that these voltage transients invaded the dendrites. Dye signals induced by depolarizing somatic voltage jumps were weaker in the dendrites, when compared with those induced by hyperpolarizing voltage jumps. Dendritic responses to hyperpolarizing voltage steps applied at the soma were attenuated when membrane conductance was increased by muscimol, an agonist for GABA(A) receptors. Corresponding experimental protocols were applied to a previously developed detailed compartmental model of a Purkinje cell. In the model, as in the electrophysiological recordings, voltage attenuation from soma to dendrites increased under conditions where membrane conductance is increased by depolarization or by activation of GABA(A) receptors, respectively. We discuss how these results affect voltage clamp studies of synaptic currents and synaptic integration in Purkinje cells.

摘要

我们通过结合细胞内记录使用电压成像技术,并利用小脑浦肯野细胞的详细房室模型进行计算机模拟,研究了膜电压变化从小脑浦肯野细胞的胞体向树突的传播。用苯乙烯基染料二 - 4 - ANEPPS染色的小脑培养物中单个浦肯野细胞的荧光信号,通过10×10光电二极管阵列和电荷耦合器件(CCD)进行检测。荧光强度分别随膜去极化和超极化而降低和增加。分数荧光变化(δF/F)与膜电位之间的关系可用斜率高达 - 3%/100 mV的线性函数来描述。应用于用胞内记录电极钳制电压的浦肯野细胞的超极化和去极化电压阶跃会诱导树突染料信号,表明这些电压瞬变侵入了树突。与超极化电压阶跃诱导的信号相比,去极化胞体电压阶跃诱导的树突染料信号在树突中较弱。当通过GABA(A)受体激动剂蝇蕈醇增加膜电导时,在胞体施加的超极化电压阶跃引起的树突反应会减弱。将相应的实验方案应用于先前开发的浦肯野细胞详细房室模型。在该模型中,与电生理记录一样,在分别通过去极化或激活GABA(A)受体增加膜电导的条件下,从胞体到树突的电压衰减会增加。我们讨论了这些结果如何影响浦肯野细胞中突触电流和突触整合的电压钳研究。

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