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猫背外侧膝状核中无滞后X细胞空间感受野组织的数学模型。

Mathematical models for the spatial receptive-field organization of nonlagged X-cells in dorsal lateral geniculate nucleus of cat.

作者信息

Einevoll G T, Heggelund P

机构信息

Physics, ITF, Agricultural University of Norway.

出版信息

Vis Neurosci. 2000 Nov-Dec;17(6):871-85. doi: 10.1017/s0952523800176060.

Abstract

Spatial receptive fields of relay cells in dorsal lateral geniculate nucleus (dLGN) have commonly been modeled as a difference of two Gaussian functions. We present alternative models for dLGN cells which take known physiological couplings between retina and dLGN and within dLGN into account. The models include excitatory input from a single retinal ganglion cell and feedforward inhibition via intrageniculate interneurons. Mathematical formulas describing the receptive field and response to circular spot stimuli are found both for models with a finite and an infinite number of ganglion-cell inputs to dLGN neurons. The advantage of these models compared to the common difference-of-Gaussians model is that they, in addition to providing mathematical descriptions of the receptive fields of dLGN neurons, also make explicit contributions from the geniculate circuit. Moreover, the model parameters have direct physiological relevance and can be manipulated and measured experimentally. The discrete model is applied to recently published data (Ruksenas et al., 2000) on response versus spot-diameter curves for dLGN cells and for the retinal input to the cell (S-potentials). The models are found to account well for the results for the X-cells in these experiments. Moreover, predictions from the discrete model regarding receptive-field sizes of interneurons, the amount of center-surround antagonism for interneurons compared to relay cells, and distance between neighboring retinal ganglion cells providing input to interneurons, are all compatible with data available in the literature.

摘要

背外侧膝状核(dLGN)中继细胞的空间感受野通常被建模为两个高斯函数的差。我们提出了dLGN细胞的替代模型,该模型考虑了视网膜与dLGN之间以及dLGN内部已知的生理耦合。这些模型包括来自单个视网膜神经节细胞的兴奋性输入和通过膝状体内中间神经元的前馈抑制。对于向dLGN神经元输入有限和无限数量神经节细胞的模型,都找到了描述感受野和对圆形光斑刺激反应的数学公式。与常见的高斯差分模型相比,这些模型的优势在于,它们除了提供dLGN神经元感受野的数学描述外,还明确了膝状体回路的贡献。此外,模型参数具有直接的生理相关性,可以通过实验进行操作和测量。离散模型应用于最近发表的关于dLGN细胞以及细胞视网膜输入(S电位)的反应与光斑直径曲线的数据(Ruksenas等人,2000年)。发现这些模型很好地解释了这些实验中X细胞的结果。此外,离散模型关于中间神经元感受野大小、中间神经元与中继细胞相比的中心-外周拮抗量以及向中间神经元提供输入的相邻视网膜神经节细胞之间距离的预测,都与文献中的数据相符。

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