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A minimal mechanistic model for temporal signal processing in the lateral geniculate nucleus

机译:外侧膝状核中时间信号处理的最小机械模型

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The receptive fields of cells in the lateral geniculate nucleus (LGN) are shaped by their diverse set of impinging inputs: feedforward synaptic inputs stemming from retina, and feedback inputs stemming from the visual cortex and the thalamic reticular nucleus. To probe the possible roles of these feedforward and feedback inputs in shaping the temporal receptive-field structure of LGN relay cells, we here present and investigate a minimal mechanistic firing-rate model tailored to elucidate their disparate features. The model for LGN relay ON cells includes feedforward excitation and inhibition (via interneurons) from retinal ON cells and excitatory and inhibitory (via thalamic reticular nucleus cells and interneurons) feedback from cortical ON and OFF cells. From a general firing-rate model formulated in terms of Volterra integral equations, we derive a single delay differential equation with absolute delay governing the dynamics of the system. A freely available and easy-to-use GUI-based MATLAB version of this minimal mechanistic LGN circuit model is provided. We particularly investigate the LGN relay-cell impulse response and find through thorough explorations of the model’s parameter space that both purely feedforward models and feedback models with feedforward excitation only, can account quantitatively for previously reported experimental results. We find, however, that the purely feedforward model predicts two impulse response measures, the time to first peak and the biphasic index (measuring the relative weight of the rebound phase) to be anticorrelated. In contrast, the models with feedback predict different correlations between these two measures. This suggests an experimental test assessing the relative importance of feedforward and feedback connections in shaping the impulse response of LGN relay cells.
机译:外侧膝状核(LGN)中细胞的接受场受其各种撞击输入的影响:来自视网膜的前馈突触输入和源自视觉皮层和丘脑网状核的反馈输入。为了探究这些前馈和反馈输入在塑造LGN中继单元的时间接收场结构中可能发挥的作用,我们在这里提出并研究了一种最小化的机械点火速率模型,旨在阐明它们的不同特征。 LGN中继ON细胞的模型包括来自视网膜ON细胞的前馈激发和抑制(通过中间神经元)以及来自皮质ON和OFF细胞的兴奋性和抑制性反馈(通过丘脑网状核和中间神经)。从以Volterra积分方程表示的一般点火速率模型中,我们推导了具有绝对延迟控制系统动力学的单个延迟微分方程。提供了此最小机械LGN电路模型的免费可用且易于使用的基于GUI的MATLAB版本。我们特别研究了LGN中继单元的脉冲响应,并通过对模型参数空间的深入研究,发现纯前馈模型和仅具有前馈激励的反馈模型都可以定量解释先前报道的实验结果。但是,我们发现,纯前馈模型预测了两种脉冲响应度量,即到达第一个峰值的时间和双相指数(测量反弹相的相对权重)是反相关的。相反,具有反馈的模型预测这两个度量之间的不同相关性。这建议进行一项实验测试,评估前馈和反馈连接在塑造LGN中继单元的脉冲响应中的相对重要性。

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