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A detailed model of the primary visual pathway in the cat: comparison of afferent excitatory and intracortical inhibitory connection schemes for orientation selectivity

机译:猫的主要视觉通路的详细模型:传入兴奋性和皮质内抑制性连接方案对方向选择性的比较

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摘要

In order to arrive at a quantitative understanding of the dynamics of cortical neuronal networks, we simulated a detailed model of the primary visual pathway of the adult cat. This computer model comprises a 5 degrees x 5 degrees patch of the visual field at a retinal eccentricity of 4.5 degrees and includes 2048 ON- and OFF-center retinal beta-ganglion cells, 8192 geniculate X-cells, and 4096 simple cells in layer IV in area 17. The neurons are implemented as improved integrate-and-fire units. Cortical receptive fields are determined by the pattern of afferent convergence and by inhibitory intracortical connections. Orientation columns are implemented continuously with a realistic receptive field scatter and jitter in the preferred orientations. We first show that realistic ON-OFF-responses, orientation selectivity, velocity low-pass behaviour, null response, and responses to spot stimuli can be obtained with an appropriate alignment of geniculate neurons converging onto the cortical simple cell (Hubel and Wiesel, 1962) and in the absence of intracortical connections. However, the average receptive field elongation (length to width) required to obtain realistic orientation tuning is 4.0, much higher than the average observed elongation. This strongly argues for additional intracortical mechanisms sharpening orientation selectivity. In the second stage, we simulated five different inhibitory intracortical connection patterns (random, local, sparse-local, circular, and cross-orientation) in order to investigate the connection specificity necessary to achieve orientation tuning. Inhibitory connection schemes were superimposed onto Hubel and Wiesel-type receptive fields with an elongation of 1.78. Cross-orientation inhibition gave rise to different horizontal and vertical orientation tuning curves, something not observed experimentally. A combination of two inhibitory schemes, local and circular inhibition (a weak form of cross-orientation inhibition), is in good agreement with observed receptive field properties. The specificity required to establish these connections during development is low. We propose that orientation selectivity is caused by at least three different mechanisms (“eclectic” model): a weak afferent geniculate bias, broadly tuned cross-orientation inhibition, and some iso-orientation inhibition. The most surprising finding is that an isotropic connection scheme, circular inhibition, in which a cell inhibits all of its postsynaptic target cells at a distance of approximately 500 microns, enhances orientation tuning and leads to a significant directional bias. This is caused by the embedding of cortical cells within a columnar structure and does not depend on our specific assumptions.
机译:为了定量了解皮层神经元网络的动力学,我们模拟了成年猫主要视觉通路的详细模型。该计算机模型包括视场为5度x 5度,视网膜偏心度为4.5度的区域,并且在IV层中包含2048个ON和OFF中心的视网膜β神经节细胞,8192个膝状X细胞和4096个简单细胞在区域17中。神经元被实施为改进的整合射击单元。皮质感受野由传入会聚的方式和皮质内抑制连接决定。定向列是连续实现的,并且在首选方向上具有实际的接收场散射和抖动。我们首先表明,可以通过适当地将膝状神经元汇聚到皮层简单细胞上来获得逼真的ON-OFF响应,方向选择性,速度低通行为,无效响应以及对斑点刺激的响应(Hubel and Wiesel,1962) )且没有皮质内连接。但是,获得实际定向调整所需的平均感受野伸长率(长度对宽度)为4.0,远高于观察到的平均伸长率。这强烈要求其他皮质内机制提高取向选择性。在第二阶段,我们模拟了五种不同的抑制性皮质内连接模式(随机,局部,稀疏局部,圆形和交叉取向),以研究实现取向调节所需的连接特异性。抑制性连接方案以1.78的伸长率叠加在Hubel和Wiesel型接受域上。交叉取向抑制产生了不同的水平和垂直取向调谐曲线,这在实验中没有观察到。局部抑制和环状抑制(交叉定向抑制的一种弱形式)这两种抑制方案的组合与观察到的感受野特性非常吻合。在开发过程中建立这些连接所需的特异性很低。我们认为,方向选择性是由至少三种不同的机制(折衷模型)引起的:弱传入膝状体偏向性,广泛调节的交叉方向抑制和某些同方向性抑制。最令人惊讶的发现是,各向同性的连接方案,即圆形抑制,其中细胞在大约500微米的距离处抑制其所有突触后靶细胞,从而增强了方向调整并导致明显的方向偏向。这是由于皮质细胞嵌入柱状结构中引起的,并不取决于我们的特定假设。

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