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丘脑网状核对小鼠感觉皮层局部睡眠的控制。

Thalamic reticular control of local sleep in mouse sensory cortex.

机构信息

Department of Fundamental Neurosciences, University of Lausanne, Lausanne, Switzerland.

出版信息

Elife. 2018 Dec 25;7:e39111. doi: 10.7554/eLife.39111.


DOI:10.7554/eLife.39111
PMID:30583750
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6342525/
Abstract

Sleep affects brain activity globally, but many cortical sleep waves are spatially confined. Local rhythms serve cortical area-specific sleep needs and functions; however, mechanisms controlling locality are unclear. We identify the thalamic reticular nucleus (TRN) as a source for local, sensory-cortex-specific non-rapid-eye-movement sleep (NREMS) in mouse. Neurons in optogenetically identified sensory TRN sectors showed stronger repetitive burst discharge compared to non-sensory TRN cells due to higher activity of the low-threshold Ca channel Ca3.3. Major NREMS rhythms in sensory but not non-sensory cortical areas were regulated in a Ca3.3-dependent manner. In particular, NREMS in somatosensory cortex was enriched in fast spindles, but switched to delta wave-dominated sleep when Ca3.3 channels were genetically eliminated or somatosensory TRN cells chemogenetically hyperpolarized. Our data indicate a previously unrecognized heterogeneity in a powerful forebrain oscillator that contributes to sensory-cortex-specific and dually regulated NREMS, enabling local sleep regulation according to use- and experience-dependence.

摘要

睡眠会全局影响大脑活动,但许多皮质睡眠波在空间上是受限的。局部节律满足皮质区域特定的睡眠需求和功能;然而,控制局部性的机制尚不清楚。我们发现丘脑网状核(TRN)是小鼠感觉皮质特有的非快速眼动睡眠(NREMS)的局部来源。由于低阈值钙通道 Ca3.3 的活性较高,在光遗传鉴定的感觉 TRN 区域中的神经元与非感觉 TRN 细胞相比表现出更强的重复爆发放电。由于 Ca3.3 依赖性,主要的 NREMS 节律在感觉而非非感觉皮质区域受到调节。特别是,躯体感觉皮层中的 NREMS 富含快纺锤波,但当 Ca3.3 通道被基因消除或躯体感觉 TRN 细胞被化学超极化时,会切换到以 delta 波为主的睡眠。我们的数据表明,在一个强大的大脑前脑振荡器中存在一种以前未被认识到的异质性,它有助于感觉皮质特有的和双重调节的 NREMS,根据使用和经验依赖性实现局部睡眠调节。

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Thalamic reticular control of local sleep in mouse sensory cortex.

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本文引用的文献

[1]
Thalamic Reticular Dysfunction as a Circuit Endophenotype in Neurodevelopmental Disorders.

Neuron. 2018-4-18

[2]
Reciprocal Circuits Linking the Prefrontal Cortex with Dorsal and Ventral Thalamic Nuclei.

Neuron. 2018-4-5

[3]
Dual function of thalamic low-vigilance state oscillations: rhythm-regulation and plasticity.

Nat Rev Neurosci. 2018-1-11

[4]
The thalamic reticular nucleus in schizophrenia and bipolar disorder: role of parvalbumin-expressing neuron networks and oxidative stress.

Mol Psychiatry. 2017-11-28

[5]
Systematic examination of the impact of depolarization duration on thalamic reticular nucleus firing in vivo.

Neuroscience. 2017-9-28

[6]
Shaping the Default Activity Pattern of the Cortical Network.

Neuron. 2017-6-7

[7]
Distinct Thalamic Reticular Cell Types Differentially Modulate Normal and Pathological Cortical Rhythms.

Cell Rep. 2017-6-6

[8]
Local aspects of sleep and wakefulness.

Curr Opin Neurobiol. 2017-6

[9]
Selective entrainment of gamma subbands by different slow network oscillations.

Proc Natl Acad Sci U S A. 2017-4-25

[10]
Coordinated infraslow neural and cardiac oscillations mark fragility and offline periods in mammalian sleep.

Sci Adv. 2017-2-8

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