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猕猴视网膜神经节细胞对颜色和亮度闪烁的敏感性。

Sensitivity of macaque retinal ganglion cells to chromatic and luminance flicker.

作者信息

Lee B B, Martin P R, Valberg A

机构信息

Department of Neurobiology, Max Planck Institute for Biophysical Chemistry, Göttingen, FRG.

出版信息

J Physiol. 1989 Jul;414:223-43. doi: 10.1113/jphysiol.1989.sp017685.

DOI:10.1113/jphysiol.1989.sp017685
PMID:2607430
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1189139/
Abstract
  1. We have studied the sensitivity of macaque retinal ganglion cells to sinusoidal flicker. Contrast thresholds were compared for stimuli which alternated only in luminance ('luminance flicker') or chromaticity ('chromatic flicker'), or which modulated only the middle- or long-wavelength-sensitive cones ('silent substitution'). 2. For luminance flicker, the lowest thresholds were those of phasic, non-opponent ganglion cells. Sensitivity was maximal near 10 Hz. 3. Tonic, cone-opponent ganglion cells were relatively insensitive to luminance flicker, especially at low temporal frequencies, but were sensitive to chromatic flicker, thresholds changing little from 1 to 20 Hz. Those with antagonistic input from middle- and long-wavelength-sensitive (M- and L-) cones had a low threshold to chromatic flicker between red and green lights. Those with input from short-wavelength-sensitive (S-) cones had a low threshold to chromatic flicker between blue and green. Expressed in terms of cone contrast, the S-cone inputs to blue on-centre cells had higher thresholds than M- and L-cone inputs to other cell types. 4. Phasic, non-opponent cells responded to high-contrast red-green chromatic flicker at twice the flicker frequency. This frequency-doubled response is due to a non-linearity of summation of M- and L-cone mechanisms. It was only apparent at cone contrasts which were above threshold for most tonic cells. 5. M- or L-cones were stimulated selectively using silent substitution. Thresholds of M- and L-cone inputs to both red and green on-centre cells were similar. This implies that these cells' sensitivity to chromatic flicker is derived in equal measure from centre and surround. Thresholds of the isolated cone inputs could be used to predict sensitivity to chromatic flicker. The high threshold of these cells to achromatic contrast is thus, at least in part, due to mutual cancellation by opponent inputs rather than intrinsically low sensitivity. 6. Thresholds of M- and L-cone inputs to phasic cells were similar at 10 Hz, and were comparable to those of tonic cells, suggesting that at 1400 td cone inputs to both cell groups are of similar strength. 7. The modulation transfer function of phasic cells to luminance flicker was similar to the detection sensitivity curve of human observers who viewed the same stimulus. For chromatic flicker, at low temporal frequencies thresholds of tonic cells (red or green on-centre cells in the case of red-green flicker or blue on-centre cells in the case of blue-green flicker) approached that of human observers. We propose the different cell types are the substrate of different channels which have been postulated on the basis of psychophysical experiments. 8. At frequencies of chromatic flicker above 2 Hz, human sensitivity falls off steeply whereas tonic cell sensitivity remained the same or increased. This implies that high-frequency signals in the chromatic, tonic cell pathway are not available to the central pathway respons
摘要
  1. 我们研究了猕猴视网膜神经节细胞对正弦闪烁的敏感性。比较了仅在亮度(“亮度闪烁”)或色度(“颜色闪烁”)上交替的刺激,或仅调制中波或长波敏感视锥细胞(“无声替代”)的刺激的对比度阈值。2. 对于亮度闪烁,最低阈值出现在相位性、非对立神经节细胞中。敏感性在10Hz左右达到最大值。3. 紧张性、视锥细胞对立神经节细胞对亮度闪烁相对不敏感,尤其是在低时间频率下,但对颜色闪烁敏感,阈值在1至20Hz之间变化不大。那些从中波和长波敏感(M和L)视锥细胞有拮抗输入的细胞对红光和绿光之间的颜色闪烁阈值较低。那些有来自短波敏感(S)视锥细胞输入的细胞对蓝光和绿光之间的颜色闪烁阈值较低。以视锥细胞对比度表示,S视锥细胞对蓝中心细胞的输入阈值高于M和L视锥细胞对其他细胞类型的输入阈值。4. 相位性、非对立细胞对高对比度红绿颜色闪烁以闪烁频率的两倍做出反应。这种频率加倍的反应是由于M和L视锥细胞机制的非线性总和。它仅在大多数紧张性细胞的阈值以上的视锥细胞对比度下才明显。5. 使用无声替代选择性地刺激M或L视锥细胞。M和L视锥细胞对红和绿中心细胞的输入阈值相似。这意味着这些细胞对颜色闪烁的敏感性在同等程度上来自中心和周边。孤立视锥细胞输入的阈值可用于预测对颜色闪烁的敏感性。因此,这些细胞对消色差对比度的高阈值至少部分是由于对立输入的相互抵消,而不是内在的低敏感性。6. M和L视锥细胞对相位性细胞的输入在10Hz时相似,并且与紧张性细胞的输入相当,这表明在1400td时,两个细胞组的视锥细胞输入强度相似。7. 相位性细胞对亮度闪烁的调制传递函数与观看相同刺激的人类观察者的检测灵敏度曲线相似。对于颜色闪烁,在低时间频率下,紧张性细胞(红绿闪烁情况下的红或绿中心细胞或蓝绿闪烁情况下的蓝中心细胞)的阈值接近人类观察者的阈值。我们提出不同的细胞类型是基于心理物理学实验假设的不同通道的基础。8. 在颜色闪烁频率高于2Hz时,人类敏感性急剧下降,而紧张性细胞敏感性保持不变或增加。这意味着颜色、紧张性细胞通路中的高频信号无法用于中枢通路响应

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