Luminal Cerebrovascular Proteomics.

IF 1.1 Q3 BIOLOGY
Sophia M Shi, Carolyn R Bertozzi, Tony Wyss-Coray
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引用次数: 0

Abstract

Brain endothelial cells, which constitute the cerebrovasculature, form the first interface between the blood and brain and play essential roles in maintaining central nervous system (CNS) homeostasis. These cells exhibit strong apicobasal polarity, with distinct luminal and abluminal membrane compositions that crucially mediate compartmentalized functions of the vasculature. Existing transcriptomic and proteomic profiling techniques often lack the spatial resolution to discriminate between these membrane compartments, limiting insights into their distinct molecular compositions and functions. To overcome these limitations, we developed an in vivo proteomic strategy to selectively label and enrich luminal cerebrovascular proteins. In this approach, we perfuse a membrane-impermeable biotinylation reagent into the vasculature to covalently tag cell surface proteins exposed on the luminal side. This is followed by microvessel isolation and streptavidin-based enrichment of biotinylated proteins for downstream mass spectrometry analysis. Using this method, we robustly identified over 1,000 luminally localized proteins via standard liquid chromatography-tandem mass spectrometry (LC-MS/MS) techniques, achieving substantially improved enrichment of canonical luminal markers compared with conventional vascular proteomic approaches. Our method enables the generation of a high-confidence, compartment-resolved atlas of the luminal cerebrovascular proteome and offers a scalable platform for investigating endothelial surface biology in both healthy and disease contexts. Key features • Enables high-resolution proteomic profiling of the luminal surface of the brain vasculature in vivo. • Improves signal-to-noise ratio through an added microvessel isolation step, reducing nonspecific background. • Applied to uncover aging-related changes in luminal endothelial surface protein composition. • Adaptable for identifying therapeutic targets, transporters, signaling pathways, and disease-associated alterations in the luminal vascular environment across diverse biological contexts.

脑血管蛋白质组学。
脑内皮细胞构成了脑血管系统,是血液和大脑之间的第一个界面,在维持中枢神经系统(CNS)的稳态中起着重要作用。这些细胞表现出强烈的顶基底极性,具有不同的管腔和管腔膜成分,这些成分至关重要地介导了脉管系统的区隔功能。现有的转录组学和蛋白质组学分析技术通常缺乏空间分辨率来区分这些膜室,限制了对其不同分子组成和功能的了解。为了克服这些限制,我们开发了一种体内蛋白质组学策略来选择性地标记和富集管腔脑血管蛋白。在这种方法中,我们将一种膜不渗透的生物素化试剂灌注到脉管系统中,以共价标记暴露在管腔侧的细胞表面蛋白。接下来是微血管分离和基于链霉亲和素的生物素化蛋白富集,用于下游质谱分析。使用该方法,我们通过标准液相色谱-串联质谱(LC-MS/MS)技术确定了超过1000个发光定位蛋白,与传统血管蛋白质组学方法相比,显著提高了典型发光标记的富集程度。我们的方法能够生成高可信度,室分辨率的管腔脑血管蛋白质组图谱,并为研究健康和疾病背景下的内皮表面生物学提供了可扩展的平台。•能够在体内对脑血管管腔表面进行高分辨率蛋白质组学分析。•通过增加微血管隔离步骤提高信噪比,减少非特异性背景。•用于揭示腔内内皮表面蛋白组成的衰老相关变化。•适用于识别不同生物背景下管腔血管环境中的治疗靶点、转运体、信号通路和疾病相关改变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.50
自引率
0.00%
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