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首页> 外文期刊>PLoS Computational Biology >Heterogeneous firing responses predict diverse couplings to presynaptic activity in mice layer V pyramidal neurons
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Heterogeneous firing responses predict diverse couplings to presynaptic activity in mice layer V pyramidal neurons

机译:异质放电反应预测小鼠V层锥体神经元与突触前活动的各种偶联

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In this study, we present a theoretical framework combining experimental characterizations and analytical calculus to capture the firing rate input-output properties of single neurons in the fluctuation-driven regime. Our framework consists of a two-step procedure to treat independently how the dendritic input translates into somatic fluctuation variables, and how the latter determine action potential firing. We use this framework to investigate the functional impact of the heterogeneity in firing responses found experimentally in young mice layer V pyramidal cells. We first design and calibrate in vitro a simplified morphological model of layer V pyramidal neurons with a dendritic tree following Rall's branching rule. Then, we propose an analytical derivation for the membrane potential fluctuations at the soma as a function of the properties of the synaptic input in dendrites. This mathematical description allows us to easily emulate various forms of synaptic input: either balanced, unbalanced, synchronized, purely proximal or purely distal synaptic activity. We find that those different forms of dendritic input activity lead to various impact on the somatic membrane potential fluctuations properties, thus raising the possibility that individual neurons will differentially couple to specific forms of activity as a result of their different firing response. We indeed found such a heterogeneous coupling between synaptic input and firing response for all types of presynaptic activity. This heterogeneity can be explained by different levels of cellular excitability in the case of the balanced, unbalanced, synchronized and purely distal activity. A notable exception appears for proximal dendritic inputs: increasing the input level can either promote firing response in some cells, or suppress it in some other cells whatever their individual excitability. This behavior can be explained by different sensitivities to the speed of the fluctuations, which was previously associated to different levels of sodium channel inactivation and density. Because local network connectivity rather targets proximal dendrites, our results suggest that this aspect of biophysical heterogeneity might be relevant to neocortical processing by controlling how individual neurons couple to local network activity.
机译:在这项研究中,我们提出了一个结合实验特征和分析演算的理论框架,以捕获波动驱动下单个神经元的放电速率输入-输出特性。我们的框架包括两步过程,以独立处理树突状输入如何转化为体细胞波动变量,以及后者如何确定动作电位触发。我们使用此框架来调查异质性在射击响应中实验发现在年轻小鼠V层锥体细胞中的功能性影响。我们首先设计并在体外校准遵循Rall分支规则的带有树突树的V层锥体神经元的简化形态学模型。然后,我们提出了一种针对体细胞中膜电位波动的分析推导,它是树突中突触输入特性的函数。这种数学描述使我们能够轻松模拟各种形式的突触输入:平衡,不平衡,同步,纯近端或纯远端的突触活动。我们发现,这些不同形式的树突状输入活动导致对体膜电位波动特性的各种影响,从而增加了单个神经元由于其不同的放电反应而差异地耦合到特定形式的活动的可能性。我们确实在所有类型的突触前活动的突触输入和激发反应之间发现了这种异质耦合。在平衡,不平衡,同步和纯粹远端活动的情况下,这种异质性可以用不同水平的细胞兴奋性来解释。近端树突状输入似乎有一个明显的例外:增加输入水平可以促进某些细胞的放电反应,或抑制某些其他细胞的激发反应,无论其个体兴奋性如何。可以通过对波动速度的不同敏感性来解释这种行为,该敏感性先前与钠通道失活和密度的不同水平相关。因为本地网络的连通性而是针对近端树突,所以我们的结果表明,生物物理异质性的这一方面可能通过控制单个神经元与本地网络活动的耦合方式与新皮质的处理有关。

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