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Adaptive integrate-and-fire model reproduces the dynamics of olfactory receptor neuron responses in a moth

机译:自适应整合解雇模型重现蛾类嗅觉受体神经元反应的动力学

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摘要

In order to understand how olfactory stimuli are encoded and processed in the brain, it is important to build a computational model for olfactory receptor neurons (ORNs). Here, we present a simple and reliable mathematical model of a moth ORN generating spikes. The model incorporates a simplified description of the chemical kinetics leading to olfactory receptor activation and action potential generation. We show that an adaptive spike threshold regulated by prior spike history is an effective mechanism for reproducing the typical phasic–tonic time course of ORN responses. Our model reproduces the response dynamics of individual neurons to a fluctuating stimulus that approximates odorant fluctuations in nature. The parameters of the spike threshold are essential for reproducing the response heterogeneity in ORNs. The model provides a valuable tool for efficient simulations of olfactory circuits.
机译:为了了解嗅觉刺激如何在大脑中编码和处理,建立嗅觉受体神经元(ORN)的计算模型很重要。在这里,我们提出了一个飞蛾ORN产生尖峰的简单可靠的数学模型。该模型包含导致嗅觉受体激活和动作电位生成的化学动力学的简化描述。我们表明,由先前的峰值历史记录调节的自适应峰值阈值是再现ORN响应的典型的相调时间过程的有效机制。我们的模型再现了单个神经元对波动刺激的反应动力学,该刺激近似于自然界中的气味波动。尖峰阈值的参数对于在ORN中再现响应异质性至关重要。该模型为有效模拟嗅觉回路提供了有价值的工具。

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