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鲶鱼内视网膜神经网络的剖析。II. 神经节细胞之间的相互作用。

Dissection of the neuron network in the catfish inner retina. II. Interactions between ganglion cells.

作者信息

Sakai H M, Naka K

机构信息

National Institute for Basic Biology, Okazaki, Japan.

出版信息

J Neurophysiol. 1988 Nov;60(5):1568-83. doi: 10.1152/jn.1988.60.5.1568.

Abstract
  1. To characterize signal interactions between ganglion cells, extrinsic current, either sinusoidally or white-noise modulated, was injected into a ganglion cell and the resulting extracellular spike discharges were recorded from a neighboring ganglion cell. 2. Current injected into an ON-ganglion (GA) cell modulated the spike discharges of a neighboring ON-ganglion cell (GA). Similarly, a current injected into an OFF-ganglion (GB) cell modulated the spike discharges of a neighboring OFF-ganglion (GB) cell. The signal transmission between ganglion cells of the same response polarity was fast and sign-noninverting. The transfer function was lowpass with a cutoff frequency of 30 Hz. The efficacy of the transmission was comparable to that from bipolar or amacrine to ganglion cells of the same polarity. 3. Current injected into an ON-ganglion (GA) cell modulated the spike discharges of a neighboring OFF-ganglion (GB) cell; the signal transmission was slow and sign-noninverting. Correspondingly, current injected into an OFF-ganglion (GB) cell modulated the spike discharges of a neighboring ON-ganglion (GA) cell; transmission was slow and sign-inverting. 4. A brief electrical stimulation of the optic nerve activated a single antidromic ganglion cell spike at threshold. With suprathreshold stimulation, multiple spikes appeared, which probably were activated orthodromically. Changes in membrane potential of ganglion and amacrine cells induced by optic nerve stimulation usually lasted 50-80 ms, with an initial depolarization followed by hyperpolarization. We interpret such long-lasting responses to be mediated by reciprocal circuits that include amacrine, bipolar, and ganglion cells. 5. Together with the observations made by Sakai and Naka, we conclude that virtually almost all amacrine, bipolar, and ganglion cells are functionally interconnected; direct and fast connections are established among ON-cells and similarly among OFF-cells, and complex, indirect connections are established between ON- and OFF-cells.
摘要
  1. 为了表征神经节细胞之间的信号相互作用,将正弦调制或白噪声调制的外源电流注入一个神经节细胞,并从相邻的神经节细胞记录由此产生的细胞外尖峰放电。2. 注入ON型神经节(GA)细胞的电流调制了相邻ON型神经节细胞(GA)的尖峰放电。同样,注入OFF型神经节(GB)细胞的电流调制了相邻OFF型神经节细胞(GB)的尖峰放电。相同反应极性的神经节细胞之间的信号传递快速且符号不变。传递函数为低通,截止频率为30Hz。这种传递的效率与从双极细胞或无长突细胞到相同极性神经节细胞的传递效率相当。3. 注入ON型神经节(GA)细胞的电流调制了相邻OFF型神经节(GB)细胞的尖峰放电;信号传递缓慢且符号不变。相应地,注入OFF型神经节(GB)细胞的电流调制了相邻ON型神经节(GA)细胞的尖峰放电;传递缓慢且符号反转。4. 对视神经进行短暂电刺激在阈值时激活单个逆行神经节细胞尖峰。在阈上刺激时,会出现多个尖峰,这些尖峰可能是顺行激活的。视神经刺激引起的神经节细胞和无长突细胞的膜电位变化通常持续50 - 80毫秒,最初是去极化,随后是超极化。我们将这种持久反应解释为由包括无长突细胞、双极细胞和神经节细胞的相互回路介导。5. 结合Sakai和Naka的观察结果,我们得出结论,几乎所有的无长突细胞、双极细胞和神经节细胞在功能上都是相互连接的;在ON型细胞之间以及类似地在OFF型细胞之间建立了直接和快速的连接,而在ON型细胞和OFF型细胞之间建立了复杂的间接连接。

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