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对比度对猫视网膜神经节细胞传递特性的影响。

The effect of contrast on the transfer properties of cat retinal ganglion cells.

作者信息

Shapley R M, Victor J D

出版信息

J Physiol. 1978 Dec;285:275-98. doi: 10.1113/jphysiol.1978.sp012571.

Abstract
  1. Variation in stimulus contrast produces a marked effect on the dynamics of the cat retina. This contrast effect was investigated by measurement of the responses of X and Y ganglion cells. The stimuli were sine gratings or rectangular spots modulated by a temporal signal which was a sum of sinusoids. Fourier analysis of the neural response to such a stimulus allowed us to calculate first order and second order frequency kernels. 2. The first order frequency kernel of both X and Y ganglion cells became more sharply tuned at higher contrasts. The peak amplitude also shifted to higher temporal frequency at higher contrasts. Responses to low frequencies of modulation (less than 1 Hz) grew less than proportionally with contrast. However, response amplitudes at higher modulation frequencies (greater than 4 Hz) scaled approximately proportionally with contrast. Also, there was a marked phase advance in these latter components as contrast increased. 3. The contrast effect was significantly larger for Y cells than for X cells. 4. The first order frequency kernel was measured with single sine waves as well as with the sum of sinusoids as a modulation signal. The transfer function measured in this way was much less affected by increases in contrast. This implied that stimulus energy at one temporal frequency could affect the response amplitude and phase shift at another temporal frequency. 5. Direct proof was found that modulation at one frequency modifies the response at other frequencies. This was demonstrated by perturbation experiments in which the modulation stimulus was the sum of one strong perturbing sinusoid and seven weak test sinusoids. 6. The shape of the graph of the amplitude of the first order frequency kernel vs. temporal frequency did not depend on the amplitudes of the first order components, but rather on local retinal contrast. This was shown in an experiment with a sine grating placed at different positions in the visual field. The shape of the first order kernel did not vary with spatial phase, while the magnitudes of the first order responses varied greatly with spatial phase. 7. Models for the contrast gain control mechanism are considered in the Discussion.
摘要
  1. 刺激对比度的变化对猫视网膜的动力学产生显著影响。通过测量X和Y神经节细胞的反应来研究这种对比度效应。刺激物是由作为正弦波之和的时间信号调制的正弦光栅或矩形光斑。对这种刺激的神经反应进行傅里叶分析,使我们能够计算一阶和二阶频率核。2. X和Y神经节细胞的一阶频率核在较高对比度下调谐得更加尖锐。峰值幅度在较高对比度下也向更高的时间频率移动。对低频调制(小于1赫兹)的反应随对比度的增加增长小于比例关系。然而,在较高调制频率(大于4赫兹)下的反应幅度与对比度大致成比例缩放。而且,随着对比度增加,后一组分有明显的相位提前。3. Y细胞的对比度效应比X细胞显著更大。4. 一阶频率核是用单正弦波以及正弦波之和作为调制信号来测量的。以这种方式测量的传递函数受对比度增加的影响要小得多。这意味着一个时间频率的刺激能量可以影响另一个时间频率的反应幅度和相移。5. 发现了直接证据,即一个频率的调制会改变其他频率的反应。这通过微扰实验得到证明,其中调制刺激是一个强微扰正弦波和七个弱测试正弦波之和。6. 一阶频率核幅度与时间频率的关系图的形状不取决于一阶分量的幅度,而是取决于局部视网膜对比度。这在一个将正弦光栅放置在视野不同位置的实验中得到了证明。一阶核的形状不随空间相位变化,而一阶反应的幅度随空间相位有很大变化。7. 在讨论中考虑了对比度增益控制机制的模型。

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