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尖峰发生器限制了视网膜神经节细胞中信息传递的效率。

Spike generator limits efficiency of information transfer in a retinal ganglion cell.

作者信息

Dhingra Narender K, Smith Robert G

机构信息

Department of Neuroscience, University of Pennsylvania, Philadelphia, Pennsylvania 19104-6058, USA.

出版信息

J Neurosci. 2004 Mar 24;24(12):2914-22. doi: 10.1523/JNEUROSCI.5346-03.2004.

Abstract

The quality of the signal a retinal ganglion cell transmits to the brain is important for preception because it sets the minimum detectable stimulus. The ganglion cell converts graded potentials into a spike train with a selective filter but in the process adds noise. To explore how efficiently information is transferred to spikes, we measured contrast detection threshold and increment threshold from graded potential and spike responses of brisk-transient ganglion cells. Intracellular responses to a spot flashed over the receptive field center of the cell were recorded in an intact mammalian retina maintained in vitro at 37 degrees C. Thresholds were measured in a single-interval forced-choice procedure with an ideal observer. The graded potential gave a detection threshold of 1.5% contrast, whereas spikes gave 3.8%. The graded potential also gave increment thresholds approximately twofold lower and carried approximately 60% more gray levels. Increment threshold "dipped" below the detection threshold at a low contrast (<5%) but increased rapidly at higher contrasts. The magnitude of the "dipper" for both graded potential and spikes could be predicted from a threshold nonlinearity in the responses. Depolarization of the cell by current injection reduced the detection threshold for spikes but also reduced the range of contrasts they can transmit. This suggests that contrast sensitivity and dynamic range are related in an essential trade-off.

摘要

视网膜神经节细胞向大脑传输信号的质量对于感知很重要,因为它设定了最小可检测刺激。神经节细胞通过选择性滤波器将分级电位转换为脉冲序列,但在此过程中会添加噪声。为了探究信息向脉冲的传输效率,我们从瞬态快神经节细胞的分级电位和脉冲响应中测量了对比度检测阈值和增量阈值。在37摄氏度体外维持的完整哺乳动物视网膜中,记录细胞感受野中心上方闪现光斑时的细胞内反应。阈值在单间隔强制选择程序中由理想观察者测量。分级电位给出的检测阈值为1.5%对比度,而脉冲给出的为3.8%。分级电位给出的增量阈值也低约两倍,并且能携带多约60%的灰度级。在低对比度(<5%)时,增量阈值“低于”检测阈值,但在较高对比度时迅速增加。分级电位和脉冲的“凹陷”幅度可以从响应中的阈值非线性预测。通过电流注入使细胞去极化会降低脉冲的检测阈值,但也会降低它们能传输的对比度范围。这表明对比度敏感性和动态范围在本质的权衡中相关。

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