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猕猴纹状皮层神经元的双眼空间相位调谐特性

Binocular spatial phase tuning characteristics of neurons in the macaque striate cortex.

作者信息

Smith E L, Chino Y M, Ni J, Ridder W H, Crawford M L

机构信息

College of Optometry, University of Houston, Texas 77204-6052, USA.

出版信息

J Neurophysiol. 1997 Jul;78(1):351-65. doi: 10.1152/jn.1997.78.1.351.

Abstract

We employed microelectrode recording techniques to study the sensitivity of individual neurons in the striate cortex of anesthetized and paralyzed monkeys to relative interocular image disparities and to determine the effects of basic stimulus parameters on these cortical binocular interactions. The visual stimuli were drifting sine wave gratings. After the optimal stimulus orientation, spatial frequency, and direction of stimulus movement were found, the cells' disparity tuning characteristics were determined by measuring responses as a function of the relative interocular spatial phase of dichoptic grating pairs. No attempts were made to assess absolute position disparities or horizontal disparities relative to the horopter. The majority (approximately 70%) of simple cells were highly sensitive to interocular spatial phase disparities, particularly neurons with balanced ocular dominances. Simple cells typically demonstrated binocular facilitation at the optimal phase disparity and binocular suppression for disparities 180 degrees away. Fewer complex cells were phase selective (approximately 40%); however, the range of disparity selectivity in phase-sensitive complex cells was comparable with that for simple cells. Binocular interactions in non-phase-sensitive complex cells were evidenced by binocular response amplitudes that differed from responses to monocular stimulation. The degree of disparity tuning was independent of a cell's optimal orientation or the degree of direction tuning. However, disparity-sensitive cells tended to have narrow orientation tuning functions and the degree of disparity tuning was greatest for the optimal stimulus orientations. Rotating the stimulus for one eye 90 degrees from the optimal orientation usually eliminated binocular interactions. The effects of phase disparities on the binocular response amplitude were also greatest at the optimal spatial frequency. Thus a cell's sensitivity to absolute position disparities reflects its spatial tuning characteristics, with cells sensitive to high spatial frequencies being capable of signaling very small changes in image disparity. On the other hand, stimulus contrast had relatively little effect on a cell's disparity tuning, because response saturation occurred at the same contrast level for all relative interocular phase disparities. Thus, as with orientation tuning, a cell's optimal disparity and the degree of disparity selectivity were invariant with contrast. Overall, the results show that sensitivity to interocular spatial phase disparities is a common property of striate neurons. A cell's disparity tuning characteristics appear to largely reflect its monocular receptive field properties and the interocular balance between excitatory and inhibitory inputs. However, distinct functional classes of cortical neurons could not be discriminated on the basis of disparity sensitivity alone.

摘要

我们采用微电极记录技术来研究麻醉和瘫痪猴子纹状皮层中单个神经元对双眼间相对图像视差的敏感性,并确定基本刺激参数对这些皮层双眼相互作用的影响。视觉刺激为漂移的正弦波光栅。在找到最佳刺激方向、空间频率和刺激运动方向后,通过测量作为双眼视差光栅对的相对眼间空间相位函数的反应来确定细胞的视差调谐特性。未尝试评估相对于眼平线的绝对位置视差或水平视差。大多数(约70%)简单细胞对眼间空间相位视差高度敏感,尤其是具有平衡眼优势的神经元。简单细胞通常在最佳相位视差时表现出双眼易化,而在相差180度的视差时表现出双眼抑制。较少的复杂细胞具有相位选择性(约40%);然而,相位敏感复杂细胞的视差选择性范围与简单细胞相当。非相位敏感复杂细胞中的双眼相互作用通过与单眼刺激反应不同的双眼反应幅度来证明。视差调谐程度与细胞的最佳方向或方向调谐程度无关。然而,视差敏感细胞往往具有狭窄的方向调谐功能,并且视差调谐程度在最佳刺激方向时最大。将一只眼睛的刺激从最佳方向旋转90度通常会消除双眼相互作用。相位视差对双眼反应幅度的影响在最佳空间频率时也最大。因此,细胞对绝对位置视差的敏感性反映了其空间调谐特性,对高空间频率敏感的细胞能够检测到图像视差的非常小的变化。另一方面,刺激对比度对细胞的视差调谐影响相对较小,因为对于所有相对眼间相位视差,反应饱和都发生在相同的对比度水平。因此,与方向调谐一样,细胞的最佳视差和视差选择性程度与对比度无关。总体而言,结果表明对眼间空间相位视差的敏感性是纹状神经元的共同特性。细胞的视差调谐特性似乎在很大程度上反映了其单眼感受野特性以及兴奋性和抑制性输入之间的眼间平衡。然而,仅根据视差敏感性无法区分不同功能类别的皮层神经元。

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