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A Micro-architecture For Binocular Disparity And Ocular Dominance In Visual Cortex

机译:视觉皮层中双眼视差和眼优势的微体系结构

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In invertebrate predators such as the praying mantis and vertebrate predators such as wild cats the ability to detect small differences in inter-ocular retinal disparities is a critical means for accurately determining the depth of moving objects such as prey. In mammals, the first neurons along the visual pathway that encode binocular disparities are found in the visual cortex. However, a precise functional architecture for binocular disparity has never been demonstrated in any species, and coarse maps for disparity have been found in only one primate species. Moreover, the dominant approach for assaying the developmental plasticity of binocular cortical neurons used monocular tests of ocular dominance to infer binocular function. The few studies that examined the relationship between ocular dominance and binocular disparity of individual cells used single-unit recordings and have provided conflicting results regarding whether ocular dominance can predict the selectivity or sensitivity to binocular disparity5"9. We used two-photon calcium imaging to sample the response to monocular and binocular visual stimuli from nearly every adjacent neuron in a small region of the cat visual cortex, area 18. Here we show that local circuits for ocular dominance always have smooth and graded transitions from one apparently monocular functional domain to an adjacent binocular region. Most unexpectedly, we discovered a new map in the cat visual cortex that had a precise functional micro-architecture for binocular disparity selectivity. At the level of single cells, ocular dominance was unrelated to binocular disparity selectivity or sensitivity. When the local maps for ocular dominance and binocular disparity both had measurable gradients at a given cortical site, the two gradient directions were orthogonal to each other. Together, these results indicate that, from the perspective of the spiking activity of individual neurons, ocular dominance cannot predict binocular disparity tuning. However, the precise local arrangement of ocular dominance and binocular disparity maps provide new clues regarding how monocular and binocular depth cues may be combined and decoded.
机译:在无脊椎动物的食肉动物(如螳螂)和脊椎动物的食肉动物(如野猫)中,检测眼间视网膜差异的细微差异的能力是准确确定运动物体(例如猎物)深度的关键手段。在哺乳动物中,在视觉皮层中发现了沿视觉通路编码双眼视差的第一个神经元。但是,从未在任何物种中证明过用于双目视差的精确功能结构,并且仅在一种灵长类动物中发现了视差的粗略图。此外,用于分析双眼皮层神经元发育可塑性的主要方法是使用单眼的眼部优势测试来推断双眼功能。少数研究了单个细胞记录的眼优势与双眼视差之间的关系的研究,并使用单单位记录提供了相互矛盾的结果,即眼优势是否可以预测对双眼视差的选择性或敏感性[5]。9。我们使用双光子钙成像来在猫视皮层的一个小的区域(区域18)中,从几乎每个相邻神经元对单眼和双眼视觉刺激的响应进行采样。这里,我们显示了眼部优势的局部回路总是从一个表面上的单眼功能域一直平滑过渡到渐变。最出乎意料的是,我们在猫的视觉皮层中发现了一张新地图,该地图具有对双眼视差选择性具有精确功能的微体系结构。在单细胞水平上,眼优势与双眼视差选择性或灵敏度无关。眼部优势和双眼视差的本地地图都有可衡量性在给定皮质部位的梯度中,两个梯度方向彼此正交。总之,这些结果表明,从单个神经元的尖峰活动的角度来看,眼部优势无法预测双眼视差的调整。但是,眼部优势和双眼视差图的精确局部排列提供了有关如何组合和解码单眼和双眼深度提示的新线索。

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  • 来源
    《Nature》 |2009年第7238期|627-631672|共6页
  • 作者

    Prakash Kara; Jamie D. Boyd;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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