猕猴V4皮质反应如何编码形状信息。

IF 2.1 3区 医学 Q3 NEUROSCIENCES
Meilan Liu, Shanshan Chang, Meixuan Chen, Peichao Li, Anna Wang Roe, Jia Ming Hu
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引用次数: 0

摘要

之前的神经记录研究表明,猴子的V4可以处理不同神经元群的形状信息。从每个单个神经元记录的反应使得检索形状信息成为可能。然而,这些研究并没有完全描述大脑皮层活动的空间分布。V4有多种类型的功能列(方向、曲率);这些结构如何对不同的形状做出反应?在这里,我们利用固有的光学成像,探索了V4的皮层对轮廓(直线和曲线)和形状(圆形和正方形)的反应。我们发现,在V4中,神经元对不同形状的反应高度依赖于形状中包含的组成特征。一个特定的局部网络对其相应形状的响应幅度会高于其他形状。同时,V4的皮质反应对刺激位置的转移表现出耐受性。我们的研究结果表明,V4的两个基本皮层反应特征是皮层激活反应模式的特异性和对刺激位置变化的耐受性。这些特征有助于从成像结果中解码形状信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
How shape information is coded by V4 cortical response of Macaque Monkey.

Previous neural recording studies have shown that monkey V4 can process the shape information across populations of neurons. The responses recorded from each single neuron make it possible to retrieve shape information. However, these studies did not fully characterize the spatial distribution of activity in the cortex. There are multiple types of functional columns (orientation, curvature) in V4; how do these structures respond to different shapes? Here, with intrinsic optical imaging, we explored the cortical responses of V4 to contours (straight and curved) and shapes (circle and square). We found that in V4, the response of neurons to different shapes is highly dependent on the compositional features contained in the shape. A specific local network would have a higher response magnitude to its corresponding shape than other shapes. Meanwhile, the cortical response of V4 exhibits a tolerance to the shift of stimulus location. Our results suggest that two essential cortical response features in V4 are the specificity of the activated response pattern in the cortex and tolerance to the stimulus location variance. These features can help decode shape information from imaging results.

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来源期刊
Journal of neurophysiology
Journal of neurophysiology 医学-神经科学
CiteScore
4.80
自引率
8.00%
发文量
255
审稿时长
2-3 weeks
期刊介绍: The Journal of Neurophysiology publishes original articles on the function of the nervous system. All levels of function are included, from the membrane and cell to systems and behavior. Experimental approaches include molecular neurobiology, cell culture and slice preparations, membrane physiology, developmental neurobiology, functional neuroanatomy, neurochemistry, neuropharmacology, systems electrophysiology, imaging and mapping techniques, and behavioral analysis. Experimental preparations may be invertebrate or vertebrate species, including humans. Theoretical studies are acceptable if they are tied closely to the interpretation of experimental data and elucidate principles of broad interest.
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