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通过表面多孔反相液相色谱和傅里叶变换质谱对髓鞘碱性蛋白进行连续洗脱蛋白质组鉴定。

Continuous Elution Proteoform Identification of Myelin Basic Protein by Superficially Porous Reversed-Phase Liquid Chromatography and Fourier Transform Mass Spectrometry.

机构信息

Department of Pathology, UT Southwestern Medical Center , 5323 Harry Hines Boulevard, Dallas, Texas 75390, United States.

Department of Chemistry, Northwestern University , 2145 Sheridan Road, Evanston, Illinois 60208, United States.

出版信息

Anal Chem. 2017 Nov 21;89(22):12030-12038. doi: 10.1021/acs.analchem.7b02426. Epub 2017 Oct 31.

Abstract

Myelin basic protein (MBP) plays an important structural and functional role in the neuronal myelin sheath. Translated MBP exhibits extreme microheterogeneity with numerous alternative splice variants (ASVs) and post-translational modifications (PTMs) reportedly tied to central nervous system maturation, myelin stability, and the pathobiology of various de- and dys-myelinating disorders. Conventional bioanalytical tools cannot efficiently examine ASV and PTM events simultaneously, which limits understanding of the role of MBP microheterogeneity in human physiology and disease. To address this need, we report on a top-down proteomics pipeline that combines superficially porous reversed-phase liquid chromatography (SPLC), Fourier transform mass spectrometry (FTMS), data-independent acquisition (DIA) with nozzle-skimmer dissociation (NSD), and aligned data processing resources to rapidly characterize abundant MBP proteoforms within murine tissue. The three-tier proteoform identification and characterization workflow resolved four known MBP ASVs and hundreds of differentially modified states from a single 90 min SPLC-FTMS run on ∼0.5 μg of material. This included 323 proteoforms for the 14.1 kDa ASV alone. We also identified two novel ASVs from an alternative transcriptional start site (ATSS) of the MBP gene as well as a never before characterized S-acylation event linking palmitic acid, oleic acid, and stearic acid at C78 of the 17.125 kDa ASV.

摘要

髓鞘碱性蛋白(MBP)在神经元髓鞘中起着重要的结构和功能作用。已报道,翻译后的 MBP 具有极度的微异质性,存在大量的选择性剪接变体(ASV)和翻译后修饰(PTM),这些与中枢神经系统成熟、髓鞘稳定性以及各种脱髓鞘和发育不良疾病的病理生物学有关。传统的生物分析工具不能有效地同时检查 ASV 和 PTM 事件,这限制了对 MBP 微异质性在人类生理和疾病中的作用的理解。为了解决这一需求,我们报告了一种自上而下的蛋白质组学分析流程,该流程结合了表面多孔反相液相色谱(SPLC)、傅里叶变换质谱(FTMS)、无靶向数据采集(DIA)与喷嘴-漂移管(NSD)解离以及对齐的数据处理资源,以快速鉴定鼠组织中丰富的 MBP 蛋白形式。三级蛋白形式鉴定和表征工作流程解析了四个已知的 MBP ASV 和数百个从单个 90 分钟的 SPLC-FTMS 运行中得到的差异修饰状态,材料用量约为 0.5 μg。这包括 14.1 kDa ASV 单独的 323 种蛋白形式。我们还从 MBP 基因的替代转录起始位点(ATSS)鉴定出两种新型 ASV,以及以前从未表征过的 S-酰化事件,将棕榈酸、油酸和硬脂酸连接到 17.125 kDa ASV 的 C78 上。

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