Brief sleep disruption alters synaptic structures among hippocampal and neocortical somatostatin-expressing interneurons.

IF 5.6 2区 医学 Q1 Medicine
Sleep Pub Date : 2025-03-17 DOI:10.1093/sleep/zsaf064
Frank Raven, Alexis Vega Medina, Kailynn Schmidt, Annie He, Anna A Vankampen, Vinodh Balendran, Sara J Aton
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Abstract

Study objectives: Brief sleep loss alters cognition and synaptic structures of principal neurons in hippocampus and neocortex. However, while in vivo recording and bioinformatic data suggest that inhibitory interneurons are more strongly affected by sleep loss, it is unclear how sleep and sleep deprivation affect interneurons' synapses. Disruption of the SST+ interneuron population seems to be a critical early sign of neuropathology in Alzheimer's dementia, schizophrenia, and bipolar disorder - and the risk of developing all three is increased by habitual sleep loss. We aimed to test how the synaptic structures of SST+ interneurons in various brain regions are affected by brief sleep disruption.

Methods: We used Brainbow 3.0 to label SST+ interneurons in the dorsal hippocampus, prefrontal cortex, and visual cortex of male SST-CRE transgenic mice, then compared synaptic structures in labeled neurons after a 6-h period of ad lib sleep, or gentle handling sleep deprivation (SD) starting at lights on.

Results: Dendritic spine density among SST+ interneurons in both hippocampus and neocortex was altered in a subregion-specific manner, with increased overall and thin spine density in CA1, dramatic increases in spine volume and surface area in CA3, and small but significant changes (primarily decreases) in spine size in CA1, PFC and V1.

Conclusions: Our suggest that the synaptic connectivity of SST+ interneurons is significantly altered in a brain region-specific manner by a few hours of sleep loss. This suggests a cell type-specific mechanism by which sleep loss disrupts cognition and alters excitatory-inhibitory balance in brain networks.

短暂的睡眠中断会改变海马和新皮层表达体生长抑素的中间神经元之间的突触结构。
研究目的:短暂睡眠缺失改变海马和新皮层主要神经元的认知和突触结构。然而,尽管体内记录和生物信息学数据表明,抑制性中间神经元受睡眠缺失的影响更大,但尚不清楚睡眠和睡眠剥夺如何影响中间神经元的突触。SST+中间神经元群的破坏似乎是阿尔茨海默氏症、痴呆症、精神分裂症和双相情感障碍神经病理学的一个关键早期迹象,而患上这三种疾病的风险都因习惯性睡眠不足而增加。我们的目的是测试短暂睡眠中断如何影响大脑不同区域的SST+中间神经元的突触结构。方法:我们使用Brainbow 3.0标记雄性SST- cre转基因小鼠海马背侧、前额叶皮层和视觉皮层的SST+中间神经元,并在6小时的自由睡眠或在灯光下开始的温和处理睡眠剥夺(SD)后比较标记神经元的突触结构。结果:海马和新皮层SST+中间神经元的树突棘密度发生亚区特异性改变,CA1区整体棘密度和细棘密度增加,CA3区棘体积和表面积显著增加,CA1区、PFC区和V1区棘大小变化虽小但显著(以减小为主)。结论:我们的研究表明,睡眠不足几小时后,SST+中间神经元的突触连通性会以大脑特定区域的方式发生显著改变。这表明了一种细胞类型特异性的机制,通过这种机制,睡眠不足会破坏认知,改变大脑网络中的兴奋-抑制平衡。
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来源期刊
Sleep
Sleep Medicine-Neurology (clinical)
CiteScore
8.70
自引率
10.70%
发文量
0
期刊介绍: SLEEP® publishes findings from studies conducted at any level of analysis, including: Genes Molecules Cells Physiology Neural systems and circuits Behavior and cognition Self-report SLEEP® publishes articles that use a wide variety of scientific approaches and address a broad range of topics. These may include, but are not limited to: Basic and neuroscience studies of sleep and circadian mechanisms In vitro and animal models of sleep, circadian rhythms, and human disorders Pre-clinical human investigations, including the measurement and manipulation of sleep and circadian rhythms Studies in clinical or population samples. These may address factors influencing sleep and circadian rhythms (e.g., development and aging, and social and environmental influences) and relationships between sleep, circadian rhythms, health, and disease Clinical trials, epidemiology studies, implementation, and dissemination research.
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