Brain-wide cell-type-specific transcriptomic signatures of healthy ageing in mice

IF 48.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Nature Pub Date : 2025-01-01 DOI:10.1038/s41586-024-08350-8
Kelly Jin, Zizhen Yao, Cindy T. J. van Velthoven, Eitan S. Kaplan, Katie Glattfelder, Samuel T. Barlow, Gabriella Boyer, Daniel Carey, Tamara Casper, Anish Bhaswanth Chakka, Rushil Chakrabarty, Michael Clark, Max Departee, Marie Desierto, Amanda Gary, Jessica Gloe, Jeff Goldy, Nathan Guilford, Junitta Guzman, Daniel Hirschstein, Changkyu Lee, Elizabeth Liang, Trangthanh Pham, Melissa Reding, Kara Ronellenfitch, Augustin Ruiz, Josh Sevigny, Nadiya Shapovalova, Lyudmila Shulga, Josef Sulc, Amy Torkelson, Herman Tung, Boaz Levi, Susan M. Sunkin, Nick Dee, Luke Esposito, Kimberly A. Smith, Bosiljka Tasic, Hongkui Zeng
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Abstract

Biological ageing can be defined as a gradual loss of homeostasis across various aspects of molecular and cellular function1,2. Mammalian brains consist of thousands of cell types3, which may be differentially susceptible or resilient to ageing. Here we present a comprehensive single-cell RNA sequencing dataset containing roughly 1.2 million high-quality single-cell transcriptomes of brain cells from young adult and aged mice of both sexes, from regions spanning the forebrain, midbrain and hindbrain. High-resolution clustering of all cells results in 847 cell clusters and reveals at least 14 age-biased clusters that are mostly glial types. At the broader cell subclass and supertype levels, we find age-associated gene expression signatures and provide a list of 2,449 unique differentially expressed genes (age-DE genes) for many neuronal and non-neuronal cell types. Whereas most age-DE genes are unique to specific cell types, we observe common signatures with ageing across cell types, including a decrease in expression of genes related to neuronal structure and function in many neuron types, major astrocyte types and mature oligodendrocytes, and an increase in expression of genes related to immune function, antigen presentation, inflammation, and cell motility in immune cell types and some vascular cell types. Finally, we observe that some of the cell types that demonstrate the greatest sensitivity to ageing are concentrated around the third ventricle in the hypothalamus, including tanycytes, ependymal cells, and certain neuron types in the arcuate nucleus, dorsomedial nucleus and paraventricular nucleus that express genes canonically related to energy homeostasis. Many of these types demonstrate both a decrease in neuronal function and an increase in immune response. These findings suggest that the third ventricle in the hypothalamus may be a hub for ageing in the mouse brain. Overall, this study systematically delineates a dynamic landscape of cell-type-specific transcriptomic changes in the brain associated with normal ageing that will serve as a foundation for the investigation of functional changes in ageing and the interaction of ageing and disease. A comprehensive single-cell RNA sequencing study delineates cell-type-specific transcriptomic changes in the brain associated with normal ageing that will inform the investigation into functional changes and the interaction of ageing and disease.

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小鼠健康衰老的全脑细胞类型特异性转录组特征
生物衰老可以定义为分子和细胞功能各方面的稳态逐渐丧失1,2。哺乳动物的大脑由数千种不同类型的细胞组成,这些细胞对衰老的敏感程度和适应能力可能各不相同。在这里,我们提出了一个全面的单细胞RNA测序数据集,其中包含大约120万个高质量的单细胞转录组,这些单细胞转录组来自年轻成年和老年小鼠的两性,来自前脑,中脑和后脑的区域。所有细胞的高分辨率聚类结果为847个细胞簇,并揭示了至少14个年龄偏倚的细胞簇,其中大多数是胶质细胞类型。在更广泛的细胞亚类和超型水平上,我们发现了与年龄相关的基因表达特征,并为许多神经元和非神经元细胞类型提供了2,449个独特的差异表达基因(年龄de基因)列表。尽管大多数年龄- de基因对特定细胞类型是独特的,但我们观察到不同细胞类型衰老的共同特征,包括在许多神经元类型、主要星形胶质细胞类型和成熟少突胶质细胞中与神经元结构和功能相关的基因表达减少,以及在免疫细胞类型和一些血管细胞类型中与免疫功能、抗原呈递、炎症和细胞运动相关的基因表达增加。最后,我们观察到一些对衰老最敏感的细胞类型集中在下丘脑的第三脑室周围,包括伸长细胞、室管膜细胞,以及弓状核、背内侧核和室旁核中的某些神经元类型,它们表达与能量稳态相关的基因。这些类型中的许多都表现出神经元功能的下降和免疫反应的增加。这些发现表明,下丘脑的第三脑室可能是小鼠大脑衰老的中枢。总的来说,这项研究系统地描绘了与正常衰老相关的大脑中细胞类型特异性转录组变化的动态图景,这将为研究衰老过程中的功能变化以及衰老与疾病的相互作用奠定基础。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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