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在顶后叶皮层中,前馈和反馈突触输入的细胞类型特异性整合。

Cell-type-specific integration of feedforward and feedback synaptic inputs in the posterior parietal cortex.

机构信息

Department of Neurobiology and Behavior, University of California, Irvine, 1215 McGaugh Hall, Irvine, CA 92697, USA.

Department of Neurobiology and Behavior, University of California, Irvine, 1215 McGaugh Hall, Irvine, CA 92697, USA.

出版信息

Neuron. 2022 Nov 16;110(22):3760-3773.e5. doi: 10.1016/j.neuron.2022.08.019. Epub 2022 Sep 9.

Abstract

The integration of feedforward (sensory) and feedback (top-down) neuronal signals is a principal function of the neocortex. Yet, we have limited insight into how these information streams are combined by individual neurons. Using a two-color optogenetic strategy, we found that layer 5 pyramidal neurons in the posterior parietal cortex receive monosynaptic dual innervation, combining sensory inputs with top-down signals. Subclasses of layer 5 pyramidal neurons integrated these synapses with distinct temporal dynamics. Specifically, regular spiking cells exhibited supralinear enhancement of delayed-but not coincident-inputs, while intrinsic burst-firing neurons selectively boosted coincident synaptic events. These subthreshold integration characteristics translated to a nonlinear summation of action potential firing. Complementing electrophysiology with computational modeling, we found that distinct integration profiles arose from a cell-type-specific interaction of ionic mechanisms and feedforward inhibition. These data provide insight into the cellular properties that guide the nonlinear interaction of distinct long-range afferents in the neocortex.

摘要

前馈(感觉)和反馈(自上而下)神经元信号的整合是新皮层的主要功能。然而,我们对单个神经元如何结合这些信息流知之甚少。使用双色光遗传学策略,我们发现后顶叶皮层的第 5 层锥体神经元接受单突触双重支配,将感觉输入与自上而下的信号结合在一起。第 5 层锥体神经元的子类以不同的时间动态整合这些突触。具体来说,规则放电细胞表现出延迟但不同时输入的超线性增强,而内在爆发放电神经元则选择性地增强同时发生的突触事件。这些亚阈值整合特性转化为动作电位放电的非线性总和。通过电生理学与计算模型相结合,我们发现,离子机制和前馈抑制的细胞类型特异性相互作用产生了不同的整合特征。这些数据为指导新皮层中不同长程传入的非线性相互作用的细胞特性提供了深入了解。

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