内皮细胞TDP-43耗竭破坏神经退行性变的核心血脑屏障通路

IF 21.2 1区 医学 Q1 NEUROSCIENCES
Omar M. F. Omar, Amy L. Kimble, Ashok Cheemala, Jordan D. Tyburski, Swati Pandey, Qian Wu, Bo Reese, Evan R. Jellison, Bing Hao, Yunfeng Li, Riqiang Yan, Patrick A. Murphy
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引用次数: 0

摘要

内皮细胞(ECs)有助于维持血脑屏障,但在许多神经退行性疾病中恶化。在这里,我们表明,使用一种专门的方法从死后人类皮层(92名供体,50名男性和42名女性,年龄20-98岁)中分离EC和小胶质细胞核,核内细胞转录组和表位的索引可以在单核分辨率下同时分析核蛋白和RNA转录物。我们在阿尔茨海默病、肌萎缩侧索硬化症和额颞叶变性中发现了与疾病相关的毛细血管内皮细胞亚群。这些毛细血管表现出核β-catenin和β-catenin下游基因的减少,以及TNF/NF-κB标记物的升高。值得注意的是,这些转录变化与细胞核TDP-43的缺失有关,TDP-43是一种rna结合蛋白,也在神经元细胞核中缺失。人和小鼠ECs中TDP-43的破坏复制了这些改变,表明ECs中TDP-43的缺乏是导致神经退行性疾病中血脑屏障破坏的重要因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Endothelial TDP-43 depletion disrupts core blood–brain barrier pathways in neurodegeneration

Endothelial TDP-43 depletion disrupts core blood–brain barrier pathways in neurodegeneration

Endothelial cells (ECs) help maintain the blood–brain barrier but deteriorate in many neurodegenerative disorders. Here we show, using a specialized method to isolate EC and microglial nuclei from postmortem human cortex (92 donors, 50 male and 42 female, aged 20–98 years), that intranuclear cellular indexing of transcriptomes and epitopes enables simultaneous profiling of nuclear proteins and RNA transcripts at a single-nucleus resolution. We identify a disease-associated subset of capillary ECs in Alzheimer’s disease, amyotrophic lateral sclerosis and frontotemporal degeneration. These capillaries exhibit reduced nuclear β-catenin and β-catenin-downstream genes, along with elevated TNF/NF-κB markers. Notably, these transcriptional changes correlate with the loss of nuclear TDP-43, an RNA-binding protein also depleted in neuronal nuclei. TDP-43 disruption in human and mouse ECs replicates these alterations, suggesting that TDP-43 deficiency in ECs is an important factor contributing to blood–brain barrier breakdown in neurodegenerative diseases.

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来源期刊
Nature neuroscience
Nature neuroscience 医学-神经科学
CiteScore
38.60
自引率
1.20%
发文量
212
审稿时长
1 months
期刊介绍: Nature Neuroscience, a multidisciplinary journal, publishes papers of the utmost quality and significance across all realms of neuroscience. The editors welcome contributions spanning molecular, cellular, systems, and cognitive neuroscience, along with psychophysics, computational modeling, and nervous system disorders. While no area is off-limits, studies offering fundamental insights into nervous system function receive priority. The journal offers high visibility to both readers and authors, fostering interdisciplinary communication and accessibility to a broad audience. It maintains high standards of copy editing and production, rigorous peer review, rapid publication, and operates independently from academic societies and other vested interests. In addition to primary research, Nature Neuroscience features news and views, reviews, editorials, commentaries, perspectives, book reviews, and correspondence, aiming to serve as the voice of the global neuroscience community.
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