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Simulating Cortical Feedback Modulation as Changes in Excitation and Inhibition in a Cortical Circuit Model

机译:在皮质电路模型中将皮质反馈调制模拟为激励和抑制的变化

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摘要

Cortical feedback pathways are hypothesized to distribute context-dependent signals during flexible behavior. Recent experimental work has attempted to understand the mechanisms by which cortical feedback inputs modulate their target regions. Within the mouse whisker sensorimotor system, cortical feedback stimulation modulates spontaneous activity and sensory responsiveness, leading to enhanced sensory representations. However, the cellular mechanisms underlying these effects are currently unknown. In this study we use a simplified neural circuit model, which includes two recurrent excitatory populations and global inhibition, to simulate cortical modulation. First, we demonstrate how changes in the strengths of excitation and inhibition alter the input–output processing responses of our model. Second, we compare these responses with experimental findings from cortical feedback stimulation. Our analyses predict that enhanced inhibition underlies the changes in spontaneous and sensory evoked activity observed experimentally. More generally, these analyses provide a framework for relating cellular and synaptic properties to emergent circuit function and dynamic modulation.
机译:皮层反馈通路被假设为在灵活的行为过程中分配上下文相关的信号。最近的实验工作试图理解皮层反馈输入调节其靶区域的机制。在小鼠晶须的感觉运动系统内,皮质反馈刺激调节自发活动和感觉响应能力,从而增强感觉表现。但是,目前尚不清楚这些作用的细胞机制。在这项研究中,我们使用简化的神经回路模型来模拟皮层调节,该模型包括两个反复的兴奋性种群和整体抑制。首先,我们演示了激发和抑制强度的变化如何改变模型的输入输出处理响应。其次,我们将这些反应与皮质反馈刺激的实验结果进行比较。我们的分析预测,增强的抑制作用是实验观察到的自发和感觉诱发活动变化的基础。更一般而言,这些分析提供了将细胞和突触特性与紧急电路功能和动态调制相关联的框架。

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