A theory of direction selectivity for macaque primary visual cortex

Logan Chariker, R. Shapley, M. Hawken, L. Young
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引用次数: 6

Abstract

Significance Motion perception is important for primates, and direction selectivity (DS), the ability to perceive the direction a target is moving, is an essential part of motion perception. Yet no satisfactory mechanistic explanation has been proposed for the origin of DS in the primate visual cortex up until now. In this paper, we hypothesize that DS is initiated in feed-forward LGN input as a result of the dynamic differences between the ON and OFF pathways. The mechanisms we propose are biology based, and our theory explains experimental data for all spatial and temporal frequencies in visual stimuli. Exploiting temporal biases in parallel pathways is relevant beyond visual neuroscience; similar ideas likely apply to other types of neural signal processing. This paper offers a theory for the origin of direction selectivity (DS) in the macaque primary visual cortex, V1. DS is essential for the perception of motion and control of pursuit eye movements. In the macaque visual pathway, neurons with DS first appear in V1, in the Simple cell population of the Magnocellular input layer 4Cα. The lateral geniculate nucleus (LGN) cells that project to these cortical neurons, however, are not direction selective. We hypothesize that DS is initiated in feed-forward LGN input, in the summed responses of LGN cells afferent to a cortical cell, and it is achieved through the interplay of 1) different visual response dynamics of ON and OFF LGN cells and 2) the wiring of ON and OFF LGN neurons to cortex. We identify specific temporal differences in the ON/OFF pathways that, together with item 2, produce distinct response time courses in separated subregions; analysis and simulations confirm the efficacy of the mechanisms proposed. To constrain the theory, we present data on Simple cells in layer 4Cα in response to drifting gratings. About half of the cells were found to have high DS, and the DS was broadband in spatial and temporal frequency (SF and TF). The proposed theory includes a complete analysis of how stimulus features such as SF and TF interact with ON/OFF dynamics and LGN-to-cortex wiring to determine the preferred direction and magnitude of DS.
猕猴初级视觉皮层的方向选择理论
运动感知对灵长类动物非常重要,而方向选择(direction selectivity, DS),即感知目标运动方向的能力,是运动感知的重要组成部分。然而,对于退行性椎体滑移在灵长类视觉皮层的起源,至今还没有令人满意的机制解释。在本文中,我们假设由于ON和OFF通路之间的动态差异,DS是在前馈LGN输入中启动的。我们提出的机制是基于生物学的,我们的理论解释了视觉刺激中所有空间和时间频率的实验数据。利用平行通路中的时间偏差不仅仅是视觉神经科学;类似的想法可能适用于其他类型的神经信号处理。本文为猕猴初级视觉皮层(V1)中方向选择性(DS)的起源提供了一种理论。DS对运动的感知和眼球运动的控制至关重要。在猕猴视觉通路中,具有DS的神经元首先出现在大细胞输入层4Cα的V1简单细胞群中。然而,投射到这些皮质神经元的外侧膝状核(LGN)细胞没有方向选择性。我们假设,退行性视觉是在LGN前馈输入、LGN细胞传入皮质细胞的总反应中启动的,它是通过1)ON和OFF LGN细胞不同的视觉反应动力学和2)ON和OFF LGN神经元连接到皮质的相互作用实现的。我们确定了开/关通路的具体时间差异,与项目2一起,在分离的次区域产生不同的响应时间过程;分析和仿真验证了所提机制的有效性。为了约束这一理论,我们给出了4Cα层中响应漂移光栅的简单细胞的数据。大约一半的细胞具有高DS,且DS在时空频率(SF和TF)上具有宽频。所提出的理论包括对SF和TF等刺激特征如何与开/关动力学和lgn -皮质连接相互作用的完整分析,以确定DS的首选方向和大小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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