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Active dendrites mediate stratified gamma-range coincidence detection in hippocampal model neurons

机译:主动树突介导海马模型神经元中分层的伽玛范围重合检测。

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摘要

Hippocampal pyramidal neurons exhibit gamma-phase preference in their spikes, selectively route inputs through gamma frequency multiplexing and are considered part of gamma-bound cell assemblies. How do these neurons exhibit gamma-frequency coincidence detection capabilities, a feature that is essential for the expression of these physiological observations, despite their slow membrane time constant? In this conductance-based modelling study, we developed quantitative metrics for the temporal window of integration/coincidence detection based on the spike-triggered average (STA) of the neuronal compartment. We employed these metrics in conjunction with quantitative measures for spike initiation dynamics to assess the emergence and dependence of coincidence detection and STA spectral selectivity on various ion channel combinations. We found that the presence of resonating conductances (hyperpolarization-activated cyclic nucleotide-gated or T-type calcium), either independently or synergistically when expressed together, led to the emergence of spectral selectivity in the spike initiation dynamics and a significant reduction in the coincidence detection window (CDW). The presence of A-type potassium channels, along with resonating conductances, reduced the STA characteristic frequency and broadened the CDW, but persistent sodium channels sharpened the CDW by strengthening the spectral selectivity in the STA. Finally, in a morphologically precise model endowed with experimentally constrained channel gradients, we found that somatodendritic compartments expressed functional maps of strong theta-frequency selectivity in spike initiation dynamics and gamma-range CDW. Our results reveal the heavy expression of resonating and spike-generating conductances as the mechanism underlying the robust emergence of stratified gamma-range coincidence detection in the dendrites of hippocampal and cortical pyramidal neurons.
机译:海马锥体神经元在其尖峰中表现出伽马阶段优先性,通过伽马频率多路复用选择性地路由输入,并被认为是伽马结合细胞组件的一部分。尽管它们的膜时间常数很慢,但这些神经元如何表现出伽马频率符合检测功能,这是表达这些生理观察结果所必需的功能?在此基于电导的建模研究中,我们基于神经元区室的尖峰触发平均值(STA),为整合/符合检测的时间窗口开发了定量指标。我们将这些度量标准与针对尖峰启动动力学的定量测量方法结合使用,以评估巧合检测和STA光谱选择性对各种离子通道组合的出现和依赖性。我们发现共振电导(超极化激活的环状核苷酸门控或T型钙)的存在,无论是单独表达还是协同表达,均会导致尖峰起始动力学中光谱选择性的出现和同时​​发生的显着降低检测窗口(CDW)。 A型钾离子通道的存在以及共振电导降低了STA的特征频率并加宽了CDW,但是持久的钠离子通道则通过增强STA的光谱选择性而使CDW变尖锐。最后,在赋予实验约束通道梯度的形态学精确模型中,我们发现体树突状区室在尖峰起始动力学和伽马范围CDW中表达了强烈的theta频率选择性的功能图。我们的研究结果揭示了共振电导和尖峰产生电导的大量表达,这是海马和皮质锥体神经元树突中分层伽玛范围重合检测稳健出现的基础机制。

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