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鲈鱼视网膜电突触处的缝隙连接通道门控

Gap junction channel gating at bass retinal electrical synapses.

作者信息

Lu C, McMahon D G

机构信息

Department of Physiology, University of Kentucky, Lexington 40536-0084, USA.

出版信息

Vis Neurosci. 1996 Nov-Dec;13(6):1049-57. doi: 10.1017/s0952523800007707.

Abstract

To further characterize the properties of retinal horizontal cell electrical synapses, we have studied the gating characteristics of gap junctions between cone-driven horizontal cells from the hybrid striped bass retina using double whole-cell voltage-clamp techniques. In a total of 105 cell pairs, the macroscopic conductance ranged from 0.4-100 nS with most cell pairs exhibiting junctional conductances between 10 and 30 nS. The junctional current-voltage relationship showed that peak or instantaneous currents (Iinst) were linear within the Vj range of +/- 100 mV and that steady-state junctional currents (Iss) exhibited rectification with increasing voltage beginning around +/- 30-40 mV Vj. The normalized junctional current-voltage relationship was well fit by a two-state Boltzmann distribution, with an effective gating charge of 1.9 charges/channel, a half-maximal voltage of approximately +/- 55 mV, and a normalized residual conductance of 0.28. The decay of junctional current followed a single exponential time course with the time constant decreasing with increasing Vj. Recovery of junctional current from voltage-dependent inactivation takes about 1 s following a pulse of 80 mV, and is about five times slower than the inactivation time course at the same Vj. Single-channel analysis showed that the unitary conductance of junctional channels is 50-70 pS. The overall open probability decreased in a voltage-dependent manner. Both the mean channel open time and the frequency of channel opening decreased, while the channel closure time increased. The ratio of closed time/total recording time significantly increased as Vj increased. Increased Vj reduced the number of events at all levels and shifted the unitary conductance to a lower level. Kinetic analysis of channel open duration showed that the distribution of channel open times was best fit by two exponentials and increased Vj significantly reduced the slower time constant. These results indicate that bass retina horizontal cells exhibit voltage-dependent inactivation of macroscopic junctional current. The inactivation occurs at the single-channel level mainly by increasing the rate of closure of voltage-sensitive channels.

摘要

为了进一步表征视网膜水平细胞电突触的特性,我们使用双全细胞膜片钳技术研究了杂交条纹鲈视网膜中视锥驱动的水平细胞之间缝隙连接的门控特性。在总共105个细胞对中,宏观电导范围为0.4 - 100 nS,大多数细胞对的连接电导在10到30 nS之间。连接电流 - 电压关系表明,在±100 mV的Vj范围内,峰值或瞬时电流(Iinst)呈线性,并且稳态连接电流(Iss)在Vj约为±30 - 40 mV时开始随着电压增加而呈现整流。归一化的连接电流 - 电压关系通过双态玻尔兹曼分布很好地拟合,有效门控电荷为1.9个电荷/通道,半最大电压约为±55 mV,归一化残余电导为0.28。连接电流的衰减遵循单指数时间进程,时间常数随着Vj的增加而减小。在80 mV的脉冲后,连接电流从电压依赖性失活中恢复大约需要1 s,并且比相同Vj下的失活时间进程慢约五倍。单通道分析表明,连接通道的单位电导为50 - 70 pS。总体开放概率以电压依赖性方式降低。平均通道开放时间和通道开放频率均降低,而通道关闭时间增加。随着Vj增加,关闭时间/总记录时间的比率显著增加。Vj增加会降低所有水平的事件数量,并将单位电导转移到较低水平。通道开放持续时间的动力学分析表明,通道开放时间的分布最适合用两个指数拟合,并且Vj增加会显著降低较慢的时间常数。这些结果表明,鲈鱼视网膜水平细胞表现出宏观连接电流的电压依赖性失活。失活主要在单通道水平通过增加电压敏感通道的关闭速率而发生。

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