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视交叉上核中昼夜节律的产生。

Generation of circadian rhythms in the suprachiasmatic nucleus.

机构信息

Division of Neurobiology, MRC Laboratory of Molecular Biology, Cambridge, UK.

出版信息

Nat Rev Neurosci. 2018 Aug;19(8):453-469. doi: 10.1038/s41583-018-0026-z.

DOI:10.1038/s41583-018-0026-z
PMID:29934559
Abstract

The suprachiasmatic nucleus (SCN) of the hypothalamus is remarkable. Despite numbering only about 10,000 neurons on each side of the third ventricle, the SCN is our principal circadian clock, directing the daily cycles of behaviour and physiology that set the tempo of our lives. When this nucleus is isolated in organotypic culture, its autonomous timing mechanism can persist indefinitely, with precision and robustness. The discovery of the cell-autonomous transcriptional and post-translational feedback loops that drive circadian activity in the SCN provided a powerful exemplar of the genetic specification of complex mammalian behaviours. However, the analysis of circadian time-keeping is moving beyond single cells. Technical and conceptual advances, including intersectional genetics, multidimensional imaging and network theory, are beginning to uncover the circuit-level mechanisms and emergent properties that make the SCN a uniquely precise and robust clock. However, much remains unknown about the SCN, not least the intrinsic properties of SCN neurons, its circuit topology and the neuronal computations that these circuits support. Moreover, the convention that the SCN is a neuronal clock has been overturned by the discovery that astrocytes are an integral part of the timepiece. As a test bed for examining the relationships between genes, cells and circuits in sculpting complex behaviours, the SCN continues to offer powerful lessons and opportunities for contemporary neuroscience.

摘要

下丘脑的视交叉上核(SCN)是显著的。尽管在第三脑室每侧只有大约 10000 个神经元,SCN 是我们主要的生物钟,指导着行为和生理学的日常周期,为我们的生活设定节奏。当这个核被分离在器官型培养中时,其自主的计时机制可以无限期地持续下去,具有精确性和稳健性。驱动 SCN 中昼夜节律活动的细胞自主转录和翻译后反馈环的发现,为复杂的哺乳动物行为的遗传特化提供了一个强大的范例。然而,对生物钟的分析正在超越单细胞。技术和概念上的进步,包括交叉遗传、多维成像和网络理论,开始揭示出使 SCN 成为一个独特的精确和稳健的时钟的电路水平机制和涌现特性。然而,关于 SCN 的许多方面仍然未知,尤其是 SCN 神经元的内在特性、其电路拓扑以及这些电路所支持的神经元计算。此外,星形胶质细胞是计时装置不可或缺的一部分,这一发现推翻了 SCN 是神经元时钟的传统观念。作为一个检验平台,用于研究基因、细胞和电路在塑造复杂行为方面的关系,SCN 继续为当代神经科学提供强大的教训和机会。

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1
Generation of circadian rhythms in the suprachiasmatic nucleus.视交叉上核中昼夜节律的产生。
Nat Rev Neurosci. 2018 Aug;19(8):453-469. doi: 10.1038/s41583-018-0026-z.
2
Molecular-genetic Manipulation of the Suprachiasmatic Nucleus Circadian Clock.视交叉上核生物钟的分子遗传学操作。
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In synch but not in step: Circadian clock circuits regulating plasticity in daily rhythms.同步但不同步:调节日常节律可塑性的生物钟回路
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6
Regulating the Suprachiasmatic Nucleus (SCN) Circadian Clockwork: Interplay between Cell-Autonomous and Circuit-Level Mechanisms.调节视交叉上核(SCN)昼夜节律机制:细胞自主机制与回路水平机制之间的相互作用
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Astrocytes Control Circadian Timekeeping in the Suprachiasmatic Nucleus via Glutamatergic Signaling.星形胶质细胞通过谷氨酸能信号传导控制视交叉上核中的昼夜节律计时。
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Cell-autonomous clock of astrocytes drives circadian behavior in mammals.星形胶质细胞的自主时钟驱动哺乳动物的昼夜节律行为。
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Calcium Circadian Rhythmicity in the Suprachiasmatic Nucleus: Cell Autonomy and Network Modulation.视交叉上核中的钙昼夜节律:细胞自主性和网络调节。
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J Neurosci. 2021 Jan 20;41(3):502-512. doi: 10.1523/JNEUROSCI.2015-20.2020. Epub 2020 Nov 24.

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