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一种采用基于噪声的切换机制的睡眠活跃和觉醒活跃神经元群体相互抑制的简化模型。

A Simplified model of mutually inhibitory sleep-active and wake-active neuronal populations employing a noise-based switching mechanism.

作者信息

Patel Mainak

机构信息

Department of Mathematics, College of William and Mary, United States.

出版信息

J Theor Biol. 2016 Apr 7;394:127-136. doi: 10.1016/j.jtbi.2016.01.013. Epub 2016 Jan 21.

Abstract

Infant rats switch randomly between the sleeping and waking states; during early infancy (up to postnatal day 8), sleep and wake bouts are random, brief (with means on the order of several seconds) and exponentially distributed, with the length of a particular bout independent of the length of prior bouts. As the rat ages during this early period, mean sleep and wake bout lengths gradually increase, though sleep and wake bouts remain exponentially distributed. Additionally, sleep and wake bouts are regulated independently of each other - alterations in the development of sleep (wake) bouts has no impact on the regulation wake (sleep) bouts. Sleep and wake bout behavior is associated with the activity of mutually inhibitory sleep-active and wake-active brainstem populations. In this work, I employ a simplified biophysical model of two mutually inhibitory populations consisting of ten integrate-and-fire neurons each and a noise-based switching mechanism. I show that such a noise-based switching mechanism naturally accounts for the experimentally observed features of sleep-wake switching during early infancy - random alternating activity bouts occur as a consequence of noise (provided inhibition is strong relative to excitation), bout durations are exponential (due to a lack of memory within the system), and cross-population inhibition or intrapopulation excitatory coupling provide mechanisms for changing and independently regulated sleep and wake bout means.

摘要

幼鼠在睡眠和觉醒状态之间随机切换;在婴儿早期(出生后8天内),睡眠和觉醒周期是随机的、短暂的(平均时长为几秒)且呈指数分布,特定周期的长度与之前周期的长度无关。在这一早期阶段,随着大鼠年龄增长,睡眠和觉醒周期的平均长度逐渐增加,不过睡眠和觉醒周期仍呈指数分布。此外,睡眠和觉醒周期相互独立调节——睡眠(觉醒)周期发育的改变对觉醒(睡眠)周期的调节没有影响。睡眠和觉醒周期行为与相互抑制的睡眠活跃和觉醒活跃脑干群体的活动有关。在这项研究中,我采用了一个简化的生物物理模型,该模型由两个相互抑制的群体组成,每个群体包含10个积分发放神经元以及一个基于噪声的切换机制。我表明,这种基于噪声的切换机制自然地解释了婴儿早期睡眠 - 觉醒切换的实验观察特征——由于噪声(前提是抑制相对于兴奋较强),会出现随机交替的活动周期,周期持续时间呈指数分布(由于系统内缺乏记忆),并且跨群体抑制或群体内兴奋性耦合为改变和独立调节睡眠和觉醒周期均值提供了机制。

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