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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Voltage-gated Na channels in AII amacrine cells accelerate scotopic light responses mediated by the rod bipolar cell pathway.
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Voltage-gated Na channels in AII amacrine cells accelerate scotopic light responses mediated by the rod bipolar cell pathway.

机译:AII amacrine细胞中的电压门控Na通道可加速由杆双极细胞途径介导的暗视光反应。

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摘要

During night (i.e., scotopic) vision in mammals, rod photoreceptor output is conveyed to ganglion cells (GCs), the output cells of the retina, by a specialized neural circuit comprising rod bipolar (RB) and AII amacrine cells. Here, we examined how intrinsic postsynaptic conductances in AIIs contribute to transmission of rod-derived signals. Using paired recordings from synaptically coupled RBs and AIIs, we found that a voltage-gated Na conductance in AII amacrines accelerated EPSPs arising from RB synaptic input. EPSPs also could be amplified by the Na conductance when AIIs were hyperpolarized below resting membrane potential, thereby increasing the availability of Na channels. AII amacrines are coupled electrically, and coupled AII amacrines likely receive common input from individual RBs. Na channel-mediated effects on EPSPs, however, appeared to occur at the single-cell rather than the AII network level. By recording light-evoked synaptic currents from GCs, we determined that the Na channel-dependent acceleration, but not amplification, of RB output by AII amacrines is reflected in the dynamics of AII synaptic output to retinal ganglion cells: synaptic inputs to both ON and OFF GCs are slowed equivalently, although not attenuated in amplitude, when Na channels in AIIs are blocked. Thus, during scotopic vision, Na conductances in AIIs serve to accelerate RB output.
机译:在哺乳动物的夜间(即暗视)视力中,杆状感光细胞的输出通过包括杆状双极(RB)和AII无长突细胞的专门神经回路被传递至神经节细胞(GC),即视网膜的输出细胞。在这里,我们检查了AII中内在的突触后电导如何促进杆衍生信号的传输。使用来自突触耦合的RB和AII的配对记录,我们发现AII Amacrines中的电压门控Na电导会加速由RB突触输入引起的EPSP。当AIIs在静止膜电位以下超极化时,NaP电导也可以扩增EPSPs,从而增加Na通道的利用率。 AII高蛋白素电耦合,并且耦合的AII高蛋白素可能会从单个RB接收公共输入。但是,钠通道介导的对EPSP的影响似乎发生在单细胞而非AII网络级别。通过记录来自GC的光诱发的突触电流,我们确定AII突突蛋白输出到视网膜神经节细胞的动力学反映了Na通道依赖的加速度,而不是放大的RB输出,反映在视网膜神经节细胞的AII突触输出中:ON和ON的突触输入。当AII中的Na通道被阻塞时,OFF GC会等效地减慢,尽管幅度不会衰减。因此,在暗视时,AII中的Na电导可用于加速RB的输出。

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