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Electrophysiological Imaging of Functional Architecture in the Cortical Middle Temporal Visual Area of Cebus apella Monkey

机译:Cebus apella猴中皮皮质视觉区功能结构的电生理成像

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摘要

We studied the spatial organization of directionally selective neurons in the cortical middle temporal visual area (area MT) of the Cebus monkey. We recorded neuronal activity from multielectrode arrays as they were stepped through area MT. The set of recording sites in each array penetration described a plane parallel to the cortical layers. At each recording site, we determined the preferred direction of motion. Responses recorded at successive locations from the same electrode in the array revealed gradual changes in preferred direction, along with occasional directional reversals. Comparisons of responses from adjacent electrodes at successive locations enabled electrophysiological imaging of the two-dimensional pattern of preferred directions across the cortex. Our results demonstrate a systematic organization for directionality in area MT of the New World Cebus monkey, which is similar to that known to exist in the Old World macaque. In addition, our results provide electrophysiological confirmation of map features that have been documented in other cortical areas and primate species by optical imaging. Specifically, the tangential organization of directional selectivity is characterized by slow continuous changes in directional preference, as well as lines (fractures) and points (singularities) that fragment continuous regions into patches. These electrophysiological methods also allowed a direct investigation of neuronal selectivities that give rise to map features. In particular, our results suggest that inhibitory mechanisms may be involved in the generation of fractures and singularities.
机译:我们研究了Cebus猴的大脑皮层颞中部视觉区域(MT区域)中定向选择性神经元的空间组织。我们记录了多电极阵列穿过区域MT时的神经元活动。每个阵列穿透中的一组记录位点描述了一个平行于皮质层的平面。在每个记录站点,我们确定了首选的运动方向。在阵列中同一电极的连续位置处记录的响应表明,优选方向会逐渐变化,偶尔还会发生方向反转。来自相邻电极在连续位置处的响应的比较使得能够实现跨皮层的优选方向的二维图案的电生理成像。我们的研究结果表明,新世界Cebus猴MT区的定向性有系统的组织,这与旧世界猕猴中已知的相似。此外,我们的研究结果还提供了通过光学成像技术在其他皮质区域和灵长类动物物种中记录的地图特征的电生理学确认。具体而言,方向选择性的切线组织的特征是方向偏好的连续缓慢变化,以及将连续区域分割成小块的线(断裂)和点(奇异点)。这些电生理学方法还允许直接研究引起地图特征的神经元选择性。特别地,我们的结果表明抑制机制可能与骨折和奇异点的产生有关。

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