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Neural mechanisms of REM sleep: circadian influence.

Neural mechanisms of REM sleep: circadian influence.
快速眼动睡眠的神经机制:昼夜节律影响。
批准号:
217301-2009
负责人:
Semba, Kazue
金额:
$3.64万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2011
资助国家:
加拿大
项目状态:
已结题
起止时间:
2011-01-01 至 2012-12-31

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中文摘要
翻译
睡眠是一个基本的生物过程,几乎所有的动物都有睡眠。在睡眠的各个阶段中,快速眼动(REM)睡眠的独特之处在于,除了快速眼动之外,大脑是活跃的,但身体完全处于睡眠状态。快速眼动睡眠在睡眠结束时达到高峰,这种日常节律已知是由哺乳动物大脑视交叉上核(SCN)内的昼夜节律时钟(约24小时)驱动的。我们最近发现,多唾液化的神经细胞粘附分子(PSA NCAM),一种促进细胞间相互作用的分子,在大鼠的快速眼动睡眠的昼夜模式中起作用。具体来说,一种去除PSA的化合物在药理学上消除了睡眠后期快速眼动睡眠的正常增加。然而,这种给药方式会影响整个大脑。事实上,SCN中含有大量的PSA NCAM。因此,下一步,我们将从SCN中选择性地去除PSA NCAM,并观察其对快速眼动睡眠模式的影响。长期以来,睡眠研究人员一直认为,快速眼动睡眠是由大脑下部快速眼动开启和关闭神经元之间的相互作用调节的。尽管SCN时钟可能会影响这种开关,但没有直接的解剖学联系。我们之前发现了SCN与清醒和非快速眼动睡眠核的间接解剖学联系。我们将使用类似的解剖方法来确定从SCN到快速眼动神经元和快速眼动神经元的间接通路。SCN被认为在白天(或晚上)的不同时间促进睡眠和醒来,并且不同的SCN神经元被认为影响不同的生理功能。使用定时c-Fos(一种神经元激活标记物),我们将测试促进快速眼动睡眠的SCN神经元与促进觉醒的SCN神经元在其位置和投射上不同的假设。这三个互补的研究使用行为学、解剖学和神经生理学技术,将揭示哺乳动物生物钟如何控制快速眼动睡眠的时间,以实现对周期性环境的最大适应性。
英文摘要
Sleep is a fundamental biological process identified in virtually in all species of animals. Of various stages of sleep, rapid eye movement (REM) sleep is unique in that the brain is active but the body is totally asleep except for rapid eye movements. REM sleep peaks towards the end of the sleep period, and this daily rhythm is known to be driven internally by the circadian (~24 hours) clock housed in the suprachiasmatic nucleus (SCN) of the brain in mammals. We have recently shown that polysialylated neural cell adhesion molecule (PSA NCAM), a molecule that promotes cell-to-cell interaction, plays a role in the diurnal pattern of REM sleep in rats. Specifically, a compound that removes PSA pharmacologically abolished the normal increase in REM sleep in late sleep phase. However, the route of administration was such that it would have affected the entire brain. The SCN, in fact, contains high amounts of PSA NCAM. As a next step, therefore, we will remove PSA NCAM selectively from the SCN and observe effects on REM sleep patterns. Sleep researchers have long thought that REM sleep is regulated by the interaction between REM-on and REM-off neurons in the lower part of the brain. Although the SCN clock presumably influences this on-off switch, there are no direct anatomical connections. We previously identified indirect anatomical connections of the SCN with wake and NREM sleep nuclei. We will use a similar anatomical approach to identify any indirect pathways from the SCN to REM-on and REM-off neurons. The SCN is thought to promote sleep and wake at different times of day (or night), and distinct SCN neurons are thought to influence different physiological functions. Using timed c-Fos (a neuronal activation marker), we will test the hypothesis that SCN neurons that promote REM sleep are different from those that promote wake in their location and projections. These three complementary studies using behavioural, anatomical and neurophysiological techniques will shed light on how the mammalian circadian clock controls the timing of REM sleep to achieve maximal adaptability to the periodic environment.
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