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猫视皮层中双眼激活神经元对方向和位置差异的辨别

Discrimination of orientation and position disparities by binocularly activated neurons in cat straite cortex.

作者信息

Nelson J I, Kato H, Bishop P O

出版信息

J Neurophysiol. 1977 Mar;40(2):260-83. doi: 10.1152/jn.1977.40.2.260.

Abstract
  1. We have examined and compared the ability of binocularly activated striate neurons to make both position disparity and orientation disparity discrimination in the anesthetized (N2O/O2) and paralyzed cat preparation. 2. Accurate knowledge of eye position is essential for disparity studies. Using a retinal projection technique able to detect eye drifts of less than 3' arc per retinal landmark and less than 18' arc cyclorotation disparity, we determined eye drift during the course of 2- to 4-day experiments. After the initial eye rotation due to the anesthesia and the onset of paralysis (see below), rotational drift thereafter was mainly excyclorotatory and, from all causes, rarely totaled more than 4 degrees disparity. All our data have been corrected for this residual cyclorotatory drift. 3. Optimal stimulus orientation disparities were determined from quantitative monocular orientation tuning curves for 74 binocularly activated striate cells (37 simple, 3 hypercomplex I, 31 complex, 3 hypercomplex II) from nine cats. Without exception, the mean optimal stimulus orientation disparity in each of our animals showed a departure from zero disparity equivalent to an incyclorotation of the eyes (mean, 9.2 degrees; range, 2.7 degrees-15.9 degrees). 4. We attribute this mean optimal stimulus orientation disparity shift to ocular cyclorotation as a result of the initial anesthesia and paralysis. Assuming equal intortion, incyclorotation for each eye averages 4.6 degrees. On the assumption that the mean optimal stimulus orientation disparity is zero in normal life, we pooled results from the nine animals about their individual means. For the 74 cells the resulting distribution of the optimal stimulus orientation disparities had a range of about +/-15 degrees (simple cells: SD 4.9 degrees; complex cells: SD 7.4 degrees). 5. We examined the relationship of the sharpness of the orientation tuning curves to ocular dominance, to absolute orientation preference, and to other unit properties. The striking observation was the high correlation between the sharpness of orientation tuning curves for the two eyes of a binocular neuron. For simple cells the mean difference for the half-widths of half-height was only 2.54 degrees, with sharpness showing a high correlation between the two eyes (r=0.915) over half-width at half-heights ranging from 8.5 degrees to 41.8 degrees. Complex cells showed a similar, albeit weaker, correlation. 6. Having shown that, assessed monocularly binocular units show different orientation tunings in the two eyes, we undertook binocular experiments to ascertain if these differences were the optimal disparities of sharply tuned stimulus orientation disparity channels. Using a matrix stimulation paradigm to minimize the effects of spontaneous changes in responsiveness, we have simultaneously extracted bionocular stimulus orientation disparity and position disparity tuning curves from single striate neurons...
摘要
  1. 我们已经检查并比较了双眼激活的纹状神经元在麻醉(N2O/O2)和麻痹的猫的实验准备中进行位置视差和方向视差辨别能力。2. 准确了解眼睛位置对视差研究至关重要。使用一种视网膜投影技术,该技术能够检测每个视网膜标志小于3'弧度的眼漂移和小于18'弧度的旋转视差,我们在2至4天的实验过程中确定了眼漂移。在由于麻醉和麻痹开始引起的初始眼球旋转之后(见下文),此后的旋转漂移主要是外旋转,并且由于各种原因,总视差很少超过4度。我们所有的数据都已针对这种残余的旋转漂移进行了校正。3. 从九只猫的74个双眼激活的纹状细胞(37个简单细胞、3个I型超复杂细胞、31个复杂细胞、3个II型超复杂细胞)的定量单眼方向调谐曲线中确定了最佳刺激方向视差。无一例外,我们每只动物的平均最佳刺激方向视差均显示出与零视差的偏差,相当于眼睛的内旋转(平均值为9.2度;范围为2.7度至15.9度)。4. 我们将这种平均最佳刺激方向视差偏移归因于初始麻醉和麻痹导致的眼球旋转。假设内旋相等,每只眼睛的内旋转平均为4.6度。假设在正常生活中平均最佳刺激方向视差为零,我们汇总了九只动物关于其个体平均值的结果。对于这74个细胞,最佳刺激方向视差的最终分布范围约为+/-15度(简单细胞:标准差4.9度;复杂细胞:标准差7.4度)。5. 我们研究了方向调谐曲线的锐度与眼优势、绝对方向偏好以及其他单元特性之间的关系。引人注目的观察结果是双眼神经元两只眼睛的方向调谐曲线锐度之间的高度相关性。对于简单细胞,半高半宽的平均差异仅为2.54度,在半高8.5度至41.8度范围内,两只眼睛的锐度显示出高度相关性(r = 0.915)。复杂细胞显示出类似的、尽管较弱的相关性。6. 在表明单眼评估时双眼单元在两只眼睛中显示出不同的方向调谐之后,我们进行了双眼实验,以确定这些差异是否是尖锐调谐的刺激方向视差通道的最佳视差。使用矩阵刺激范式来最小化反应性自发变化的影响,我们已经从单个纹状神经元中同时提取了双眼刺激方向视差和位置视差调谐曲线……

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