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定量差异蛋白质组学检测外伤性损伤海马的结构和代谢变化。

Detection of structural and metabolic changes in traumatically injured hippocampus by quantitative differential proteomics.

机构信息

Department of Neuroscience and Cell Biology, University of Texas Medical Branch, Galveston, Texas 77555-1060, USA.

出版信息

J Neurotrauma. 2013 May 1;30(9):775-88. doi: 10.1089/neu.2012.2391. Epub 2012 Sep 20.

DOI:10.1089/neu.2012.2391
PMID:22757692
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3941921/
Abstract

Traumatic brain injury (TBI) is a complex and common problem resulting in the loss of cognitive function. In order to build a comprehensive knowledge base of the proteins that underlie these cognitive deficits, we employed unbiased quantitative mass spectrometry, proteomics, and bioinformatics to identify and quantify dysregulated proteins in the CA3 subregion of the hippocampus in the fluid percussion model of TBI in rats. Using stable isotope 18O-water differential labeling and multidimensional tandem liquid chromatography (LC)-MS/MS with high stringency statistical analyses and filtering, we identified and quantified 1002 common proteins, with 124 increased and 76 decreased. The ingenuity pathway analysis (IPA) bioinformatics tool identified that TBI had profound effects on downregulating global energy metabolism, including glycolysis, the Krebs cycle, and oxidative phosphorylation, as well as cellular structure and function. Widespread upregulation of actin-related cytoskeletal dynamics was also found. IPA indicated a common integrative signaling node, calcineurin B1 (CANB1, CaNBα, or PPP3R1), which was downregulated by TBI. Western blotting confirmed that the calcineurin regulatory subunit, CANB1, and its catalytic binding partner PP2BA, were decreased without changes in other calcineurin subunits. CANB1 plays a critical role in downregulated networks of calcium signaling and homeostasis through calmodulin and calmodulin-dependent kinase II to highly interconnected structural networks dominated by tubulins. This large-scale knowledge base lays the foundation for the identification of novel therapeutic targets for cognitive rescue in TBI.

摘要

创伤性脑损伤 (TBI) 是一种复杂且常见的问题,会导致认知功能丧失。为了建立一个全面的认知缺陷相关蛋白知识库,我们采用无偏定量质谱、蛋白质组学和生物信息学方法,在大鼠液压冲击 TBI 模型中识别和定量海马 CA3 亚区中的失调蛋白。使用稳定同位素 18O-水差异标记和多维串联液相色谱 (LC)-MS/MS 以及严格的统计分析和过滤,我们鉴定和定量了 1002 种常见蛋白,其中 124 种蛋白上调,76 种蛋白下调。Ingenuity 途径分析 (IPA) 生物信息学工具表明,TBI 对下调全局能量代谢产生了深远影响,包括糖酵解、三羧酸循环和氧化磷酸化,以及细胞结构和功能。还发现肌动蛋白相关细胞骨架动力学的广泛上调。IPA 表明存在一个共同的整合信号节点,钙调神经磷酸酶 B1 (CANB1、CaNBα 或 PPP3R1),TBI 下调了该节点。Western blot 证实钙调神经磷酸酶调节亚基 CANB1 及其催化结合伴侣 PP2BA 减少,而其他钙调神经磷酸酶亚基没有变化。CANB1 通过钙调蛋白和钙调蛋白依赖性激酶 II 发挥关键作用,参与下调钙信号和稳态的网络,连接到以微管为主的高度相互连接的结构网络。这个大规模知识库为 TBI 认知挽救的新型治疗靶点的识别奠定了基础。

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