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超柱间视觉细胞特性对皮质内突触的依赖性:计算机模型分析

Dependence of visual cell properties on intracortical synapses among hypercolumns: analysis by a computer model.

作者信息

Ursino Mauro, La Cara Giuseppe-Emiliano

机构信息

Department of Electronics, Computer Science, and Systems, University of Bologna, Cesena, Italy.

出版信息

J Comput Neurosci. 2005 Dec;19(3):291-310. doi: 10.1007/s10827-005-2491-4.

Abstract

The role of intracortical synapses in affecting the property of visual cells is investigated by means of an original mathematical model of cortical circuitry in V1. The model represents a compromise between computational simplicity and physiological reliability. The model incorporates four different inputs into a cortical cell: thalamic input from the lateral geniculate nucleus, according to an even Gabor function; short-range inhibition confined within the hypercolumn; a long-range excitation, which emphasizes the properties of the input; and a long-range inhibition. In the model we assume that all cells receive a similar thalamic input, which differs simply according to its position in the retina and orientation preference. Simulations were performed, with different parameter values, to assess the main characteristics of cell response (i.e., the width and locations of subregions in the receptive field (RF), orientation tuning curve, and response to drifting and counterphase gratings) as a function of the strength and extension of intracortical excitatory synapses. Results suggest that, if intracortical excitation is confined within the hypercolumn, the cells exhibit the same properties as simple cells, both with regards to the width and shape of the RF, orientation tuning curve, and response to drifting and counterphase gratings. By contrast, if excitatory synapses extend beyond the hypercolumn with sufficient strength, the cells exhibit the typical characteristics of complex cells. A progressive shift from complex to simple cells can be realized with a monotonic variation in parameters. Simulations are also performed with a hierarchical model, to suggest possible experiments able to discriminate the present recurrent mechanism from the classical hierarchical one. Results support the assumptions of previous simpler models (Chance et al., 1999) and may help to understand and assess the role of intracortical synapses in rigorous quantitative terms.

摘要

通过一个原创的V1区皮质回路数学模型,研究了皮质内突触在影响视觉细胞特性方面的作用。该模型是计算简单性与生理可靠性之间的一种折衷。该模型将四种不同的输入纳入皮质细胞:来自外侧膝状体核的丘脑输入,根据均匀的伽柏函数;局限于超柱内的短程抑制;强调输入特性的长程兴奋;以及长程抑制。在模型中,我们假设所有细胞都接受相似的丘脑输入,只是根据其在视网膜中的位置和方向偏好而有所不同。使用不同的参数值进行了模拟,以评估细胞反应的主要特征(即感受野(RF)子区域的宽度和位置、方向调谐曲线以及对漂移和反相光栅的反应)作为皮质内兴奋性突触强度和范围的函数。结果表明,如果皮质内兴奋局限于超柱内,细胞在RF的宽度和形状、方向调谐曲线以及对漂移和反相光栅的反应方面都表现出与简单细胞相同 的特性。相比之下,如果兴奋性突触以足够的强度延伸到超柱之外,细胞就会表现出复杂细胞的典型特征。通过参数的单调变化可以实现从复杂细胞到简单细胞的渐进转变。还使用分层模型进行了模拟,以提出可能的实验,能够将当前的循环机制与经典的分层机制区分开来。结果支持了先前更简单模型(Chance等人,1999年)的假设,并可能有助于从严格的定量角度理解和评估皮质内突触的作用。

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