论文标题

III型对混合非线性神经元模型中瞬时输入的响应

Type III Responses to Transient Inputs in Hybrid Nonlinear Neuron Models

论文作者

Rubin, Jonathan, Signerska-Rynkowska, Justyna, Touboul, Jonathan D.

论文摘要

神经元动力学的实验表征涉及记录自发活动模式以及对瞬态和持续输入的响应。尽管许多理论上的关注已致力于神经元的自发活性,但对塑造其对瞬态输入的反应的动态机制的了解较少,尽管这些机制具有显着的生理相关性。在这里,我们研究了广泛使用的神经元模型(非线性自适应混合模型)中对瞬态输入的反应,以重现许多生物学现实的行为。我们专注于对以前与III型神经元相关的瞬时输入的反应,这可以说是霍奇金分类中研究最少的类别,这些类别是那些从未响应持续兴奋性电流响应的神经元。我们研究的两个现象是抑制后的促进,如果在抑制性脉冲之后使用适当的时机应用和斜率检测,则原本亚阈值兴奋性输入可以引起峰值,仅当在特定的,边界范围内,神经元的神经元尖峰才能在短暂性输入中尖峰。我们在非线性杂种模型中分析了这些现象的起源,并提供了系统中与PIF相关的动力结构的几何表征以及对帐篷输入的斜率检测的分析研究。尽管在具有III型兴奋性的神经元中很容易满足这些行为的必要条件,但我们的证据对于不表现出III型兴奋性的神经元的证明是相当一般的和有效的。因此,这项研究为这些对与其他系统中与III型神经元相关的瞬态输入的响应的数学分析提供了一个框架,并促进了我们对这些系统计算属性的理解。

Experimental characterization of neuronal dynamics involves recording both of spontaneous activity patterns and of responses to transient and sustained inputs. While much theoretical attention has been devoted to the spontaneous activity of neurons, less is known about the dynamic mechanisms shaping their responses to transient inputs, although these bear significant physiological relevance. Here, we study responses to transient inputs in a widely used class of neuron models (nonlinear adaptive hybrid models) well-known to reproduce a number of biologically realistic behaviors. We focus on responses to transient inputs that have been previously associated with Type III neurons, arguably the least studied category in Hodgkin's classification, which are those neurons that never exhibit continuous firing in response to sustained excitatory currents. The two phenomena that we study are post-inhibitory facilitation, in which an otherwise subthreshold excitatory input can induce a spike if it is applied with proper timing after an inhibitory pulse, and slope detection, in which a neuron spikes to a transient input only when the input's rate of change is in a specific, bounded range. We analyze the origin of these phenomena in nonlinear hybrid models and provide a geometric characterization of dynamical structures associated with PIF in the system and an analytical study of slope detection for tent inputs. While the necessary and sufficient conditions for these behaviors are easily satisfied in neurons with Type III excitability, our proofs are quite general and valid for neurons that do not exhibit Type III excitability as well. This study therefore provides a framework for the mathematical analysis of these responses to transient inputs associated with Type III neurons in other systems and for advancing our understanding of these systems' computational properties.

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