首页> 美国卫生研究院文献>Frontiers in Behavioral Neuroscience >Altered Electroencephalographic Activity Associated with Changes in the Sleep-Wakefulness Cycle of C57BL/6J Mice in Response to a Photoperiod Shortening
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Altered Electroencephalographic Activity Associated with Changes in the Sleep-Wakefulness Cycle of C57BL/6J Mice in Response to a Photoperiod Shortening

机译:C57BL / 6J小鼠对光周期缩短的反应与改变的脑电图活动与C57BL / 6J小鼠的睡眠-清醒周期的变化。

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摘要

>Aim: Under natural conditions diurnal rhythms of biological processes of the organism are synchronized with each other and to the environmental changes by means of the circadian system. Disturbances of the latter affect hormonal levels, sleep-wakefulness cycle and cognitive performance. To study mechanisms of such perturbations animal models subjected to artificial photoperiods are often used. The goal of current study was to understand the effects of circadian rhythm disruption, caused by a short light-dark cycle regime, on activity of the cerebral cortex in rodents.>Methods: We used electroencephalogram to assess the distribution of vigilance states, perform spectral analysis, and estimate the homeostatic sleep drive. In addition, we analyzed spontaneous locomotion of C57BL/6J mice under symmetric, 22-, 21-, and 20-h-long light–dark cycles using video recording and tracking methods.>Results and Conclusions: We found that shortening of photoperiod caused a significant increase of slow wave activity during non-rapid eye movement sleep suggesting an elevation of sleep pressure under such conditions. While the rhythm of spontaneous locomotion was completely entrained by all light–dark cycles tested, periodic changes in the power of the θ- and γ-frequency ranges during wakefulness gradually disappeared under 22- and 21-h-long light–dark cycles. This was associated with a significant increase in the θ–γ phase-amplitude coupling during wakefulness. Our results thus provide deeper understanding of the mechanisms underlying the impairment of learning and memory retention, which is associated with disturbed circadian regulation.
机译:>目标:在自然条件下,生物体生物过程的昼夜节律彼此同步,并通过昼夜节律系统与环境变化同步。后者的干扰会影响荷尔蒙水平,睡眠-觉醒周期和认知能力。为了研究这种扰动的机制,经常使用经受人造光周期的动物模型。当前研究的目的是了解短暂的明暗循环机制引起的昼夜节律紊乱对啮齿动物大脑皮层活动的影响。>方法:我们使用脑电图评估分布保持警觉状态,进行频谱分析,并估计稳态睡眠的驱动力。此外,我们使用视频记录和跟踪方法分析了C57BL / 6J小鼠在对称,22、21和20小时长的明暗循环下的自发运动。>结果和结论:发现在不快速的眼动睡眠中,光周期的缩短会引起慢波活动的显着增加,表明在这种情况下睡眠压力会升高。尽管测试的所有明暗周期都完全记录了自发运动的节奏,但在22和21小时长的明暗周期下,觉醒期间θ和γ频率范围的功率周期性变化逐渐消失。这与清醒过程中θ-γ相幅耦合的显着增加有关。因此,我们的结果提供了对学习和记忆保留受损的潜在机制的更深入了解,这与生物节律紊乱有关。

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