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AII 无长突细胞的电耦合和被动膜特性。

Electrical coupling and passive membrane properties of AII amacrine cells.

机构信息

Dept. of Biomedicine, University of Bergen, Jonas Lies vei 91, N-5009 Bergen, Norway.

出版信息

J Neurophysiol. 2010 Mar;103(3):1456-66. doi: 10.1152/jn.01105.2009. Epub 2010 Jan 20.

Abstract

AII amacrine cells in the mammalian retina are connected via electrical synapses to on-cone bipolar cells and to other AII amacrine cells. To understand synaptic integration in these interneurons, we need information about the junctional conductance (g(j)), the membrane resistance (r(m)), the membrane capacitance (C(m)), and the cytoplasmic resistivity (R(i)). Due to the extensive electrical coupling, it is difficult to obtain estimates of r(m), as well as the relative contribution of the junctional and nonjunctional conductances to the total input resistance of an AII amacrine cell. Here we used dual voltage-clamp recording of pairs of electrically coupled AII amacrine cells in an in vitro slice preparation from rat retina and applied meclofenamic acid (MFA) to block the electrical coupling and isolate single AII amacrines electrically. In the control condition, the input resistance (R(in)) was approximately 620 Mohms and the apparent r(m) was approximately 760 Mohms. After block of electrical coupling, determined by estimating g(j) in the dual recordings, R(in) and r(m) were approximately 4,400 Mohms, suggesting that the nongap junctional conductance of an AII amacrine cell is approximately 16% of the total input conductance. Control experiments with nucleated patches from AII amacrine cells suggested that MFA had no effect on the nongap junctional membrane of these cells. From morphological reconstructions of AII amacrine cells filled with biocytin, we obtained a surface area of approximately 900 microm(2) which, with a standard value for C(m) of 0.01 pF/microm(2), corresponds to an average capacitance of approximately 9 pF and a specific membrane resistance of approximately 41 kohms cm(2). Together with information concerning synaptic connectivity, these data will be important for developing realistic compartmental models of the network of AII amacrine cells.

摘要

所有在哺乳动物视网膜中的无长突细胞通过电突触与视锥双极细胞和其他无长突细胞相连。为了理解这些中间神经元的突触整合,我们需要了解连接电导(g(j))、膜电阻(r(m))、膜电容(C(m))和细胞质电阻率(R(i))。由于电耦合广泛存在,因此很难估计 r(m),以及连接和非连接电导对无长突细胞总输入电阻的相对贡献。在这里,我们使用体外切片培养中双电压钳记录电耦合的成对无长突细胞,并应用甲氯芬酸(MFA)阻断电耦合并单独电隔离单个无长突细胞。在对照条件下,输入电阻(R(in))约为 620 Mohms,表观 r(m)约为 760 Mohms。电耦合阻断后,通过在双记录中估计 g(j)确定,R(in)和 r(m)约为 4400 Mohms,表明无长突细胞的非间隙连接电导约占总输入电导的 16%。对无核斑块进行对照实验表明,MFA 对这些细胞的非间隙连接膜没有影响。从用生物胞素填充的无长突细胞的形态重建中,我们获得了约 900 微米 2 的表面积,与 0.01 pF/微米 2 的标准 C(m)值相对应,这对应于约 9 pF 的平均电容和约 41 kohms cm 2 的特定膜电阻。结合关于突触连接的信息,这些数据对于开发无长突细胞网络的现实分区模型非常重要。

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