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用于基于电子解离及相关应用的分支射频离子阱的研发

Development of a Branched Radio-Frequency Ion Trap for Electron Based Dissociation and Related Applications.

作者信息

Baba Takashi, Campbell J Larry, Le Blanc J C Yves, Baker Paul R S, Hager James W, Thomson Bruce A

机构信息

Sciex.

出版信息

Mass Spectrom (Tokyo). 2017;6(1):A0058. doi: 10.5702/massspectrometry.A0058. Epub 2017 Jun 15.

Abstract

Collision-induced dissociation (CID) is the most common tool for molecular analysis in mass spectrometry to date. However, there are difficulties associated with many applications because CID does not provide sufficient information to permit details of the molecular structures to be elucidated, including post-translational-modifications in proteomics, as well as isomer differentiation in metabolomics and lipidomics. To face these challenges, we are developing fast electron-based dissociation devices using a novel radio-frequency ion trap (, a branched ion trap). These devices have the ability to perform electron capture dissociation (ECD) on multiply protonated peptide/proteins; in addition, the electron impact excitation of ions from organics (EIEIO) can be also performed on singly charged molecules using such a device. In this article, we review the development of this technology, in particular on how reaction speed for EIEIO analyses on singly charged ions can be improved. We also overview some unique, recently reported applications in both lipidomics and glycoproteomics.

摘要

碰撞诱导解离(CID)是目前质谱分析中最常用的分子分析工具。然而,许多应用存在困难,因为CID无法提供足够信息以阐明分子结构细节,包括蛋白质组学中的翻译后修饰,以及代谢组学和脂质组学中的异构体区分。为应对这些挑战,我们正在开发基于快速电子的解离装置,使用新型射频离子阱(一种分支离子阱)。这些装置能够对多质子化肽/蛋白质进行电子捕获解离(ECD);此外,使用该装置还可对单电荷分子进行有机离子的电子碰撞激发(EIEIO)。在本文中,我们回顾了该技术的发展,特别是关于如何提高对单电荷离子进行EIEIO分析的反应速度。我们还概述了脂质组学和糖蛋白质组学中一些独特的、最近报道的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5fd/5469727/ce2618f87e69/massspectrometry-6-1-A0058-figure01.jpg

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