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Neural field model to reconcile structure with function in primary visual cortex

机译:神经场模型协调主视觉皮层结构与功能

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摘要

Voltage-sensitive dye imaging experiments in primary visual cortex (V1) have shown that local, oriented visual stimuli elicit stable orientation-selective activation within the stimulus retinotopic footprint. The cortical activation dynamically extends far beyond the retinotopic footprint, but the peripheral spread stays non-selective—a surprising finding given a number of anatomo-functional studies showing the orientation specificity of long-range connections. Here we use a computational model to investigate this apparent discrepancy by studying the expected population response using known published anatomical constraints. The dynamics of input-driven localized states were simulated in a planar neural field model with multiple sub-populations encoding orientation. The realistic connectivity profile has parameters controlling the clustering of long-range connections and their orientation bias. We found substantial overlap between the anatomically relevant parameter range and a steep decay in orientation selective activation that is consistent with the imaging experiments. In this way our study reconciles the reported orientation bias of long-range connections with the functional expression of orientation selective neural activity. Our results demonstrate this sharp decay is contingent on three factors, that long-range connections are sufficiently diffuse, that the orientation bias of these connections is in an intermediate range (consistent with anatomy) and that excitation is sufficiently balanced by inhibition. Conversely, our modelling results predict that, for reduced inhibition strength, spurious orientation selective activation could be generated through long-range lateral connections. Furthermore, if the orientation bias of lateral connections is very strong, or if inhibition is particularly weak, the network operates close to an instability leading to unbounded cortical activation.
机译:初级视觉皮层(V1)中的电压敏感型染料成像实验表明,局部定向的视觉刺激在视网膜视神经足迹内引起稳定的定向选择性激活。皮质的激活动态地远远超出了视网膜的足迹,但周围的扩散却保持了非选择性-令人惊讶的发现,因为许多解剖学功能研究显示了远距离连接的方向特异性。在这里,我们使用计算模型,通过使用已知已发布的解剖学约束研究预期的人口反应来调查这种明显的差异。在具有多个子种群编码方向的平面神经场模型中,模拟了输入驱动局部状态的动力学。实际的连接配置文件具有控制远程连接的群集及其方向偏差的参数。我们发现在解剖学上相关的参数范围和定向选择性激活的急剧衰减之间存在实质性重叠,这与成像实验是一致的。通过这种方式,我们的研究将远程连接的定向偏差与定向选择性神经活动的功能表达相协调。我们的结果表明,这种急剧衰减取决于三个因素,即远程连接足够分散,这些连接的取向偏向处于中间范围(与解剖结构一致),并且通过抑制可以充分平衡激发。相反,我们的建模结果预测,为了降低抑制强度,可以通过远程横向连接生成伪取向选择性激活。此外,如果横向连接的方向性偏向非常强,或者如果抑制作用特别弱,则网络会接近不稳定状态,从而导致无限制的皮质激活。

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