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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Temporal contrast adaptation in the input and output signals of salamander retinal ganglion cells.
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Temporal contrast adaptation in the input and output signals of salamander retinal ganglion cells.

机译:sal视网膜神经节细胞输入和输出信号的时间对比适应。

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摘要

We investigated how the light-evoked input and output signals of salamander retinal ganglion cells adapt to changes in temporal contrast, i.e., changes in the depth of the temporal fluctuations in the light intensity about the mean. Increasing the temporal contrast sped the kinetics and reduced the sensitivity of both the light-evoked input currents measured at the ganglion cell soma and the output spike trains of the cell. The decline in sensitivity of the input currents after an increase in contrast had two distinct kinetic components with fast (<2 sec) and slow (>10 sec) time constants. The recovery of sensitivity after a decrease in contrast was dominated by a single component with an intermediate (4-18 sec) time constant. Contrast adaptation differed for on and off cells, with both the kinetics and amplitude of the light-evoked currents of off cells adapting more strongly than those of on cells. Contrast adaptation in the input currents of a ganglion cell, however, was unable to account for the extent of adaptation in the output spike trains of the cell, indicating that mechanisms intrinsic to the ganglion cell contributed. Indeed, when fluctuating currents were injected into a ganglion cell, the sensitivity of spike generation decreased with increased current variance. Pharmacological experiments indicated that adaptation of spike generation to the current variance was attributable to properties of tetrodotoxin-sensitive Na(+) channels.
机译:我们研究了sal视网膜神经节细胞的光诱发输入和输出信号如何适应时间对比度的变化,即光强度在均值附近的时间波动深度的变化。增加时间对比度会加快动力学,并降低在神经节细胞体和细胞的输出尖峰序列处测得的光诱发输入电流的灵敏度。对比度增加之后,输入电流灵敏度的下降具有两个明显的动力学成分,分别具有快速(<2秒)和慢(> 10秒)的时间常数。对比度降低后,灵敏度的恢复主要由具有中间(4-18秒)时间常数的单个组件决定。开启和关闭细胞的对比度适应各不相同,关闭细胞的光诱发电流的动力学和幅度的适应性强于打开细胞的。然而,神经节细胞的输入电流中的对比度适应不能解释该细胞的输出尖峰序列中的适应程度,表明神经节细胞固有的机制起作用。实际上,当将波动的电流注入神经节细胞时,尖峰产生的灵敏度随电流变化的增加而降低。药理实验表明,穗生成适应当前差异可归因于河豚毒素敏感的Na(+)通道的特性。

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