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一项神经胶质细胞昼夜节律基因表达图谱揭示了细胞类型以及针对淀粉样蛋白病变或衰老的疾病特异性重编程。

A glial circadian gene expression atlas reveals cell type and disease-specific reprogramming in response to amyloid pathology or aging.

作者信息

Sheehan Patrick W, Fass Stuart, Sapkota Darshan, Kang Sylvia, Hollis Henry C, Lawrence Jennifer H, Anafi Ron C, Dougherty Joseph D, Fryer Jon D, Musiek Erik S

机构信息

Department of Neurology, Washington University School of Medicine, Saint Louis MO, USA.

Department of Genetics, Washington University School of Medicine, Saint Louis MO, USA.

出版信息

bioRxiv. 2024 Jun 1:2024.05.28.596297. doi: 10.1101/2024.05.28.596297.

Abstract

While circadian rhythm disruption may promote neurodegenerative disease, how aging and neurodegenerative pathology impact circadian gene expression patterns in different brain cell types is unknown. Here, we used translating ribosome affinity purification methods to define the circadian translatomes of astrocytes, microglia, and bulk cerebral cortex, in healthy mouse brain and in the settings of amyloid-beta plaque pathology or aging. Our data reveal that glial circadian translatomes are highly cell type-specific and exhibit profound, context-dependent reprogramming of rhythmic transcripts in response to amyloid pathology or aging. Transcripts involved in glial activation, immunometabolism, and proteostasis, as well as nearly half of all Alzheimer Disease (AD)-associated risk genes, displayed circadian oscillations, many of which were altered by pathology. Amyloid-related differential gene expression was also dependent on time of day. Thus, circadian rhythms in gene expression are cell- and context dependent and provide important insights into glial gene regulation in health, AD, and aging.

摘要

虽然昼夜节律紊乱可能会促进神经退行性疾病,但衰老和神经退行性病理如何影响不同脑细胞类型中的昼夜节律基因表达模式尚不清楚。在这里,我们使用翻译核糖体亲和纯化方法来定义健康小鼠大脑以及在淀粉样β斑块病理或衰老情况下星形胶质细胞、小胶质细胞和大脑皮质整体的昼夜节律翻译组。我们的数据表明,胶质细胞的昼夜节律翻译组具有高度的细胞类型特异性,并且在响应淀粉样病理或衰老时,会对节律性转录本进行深度的、依赖于背景的重编程。参与胶质细胞激活、免疫代谢和蛋白质稳态的转录本,以及几乎所有阿尔茨海默病(AD)相关风险基因的近一半,都表现出昼夜节律振荡,其中许多因病理而改变。淀粉样相关的差异基因表达也取决于一天中的时间。因此,基因表达中的昼夜节律是细胞和背景依赖性的,并为健康、AD和衰老状态下的胶质细胞基因调控提供了重要见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8cb/11160685/9a9e010e28e6/nihpp-2024.05.28.596297v1-f0001.jpg

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