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Detection and fragmentation of doubly charged peptide ions in MALDI-Q-TOF-MS by ion mobility spectrometry for improved protein identification

机译:离子迁移光谱改善蛋白质鉴定MALDI-Q-TOF-MS中双电荷肽离子的检测和破碎

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摘要

Today, bottom-up protein identification in MALDI-MS is based on employing singly charged peptide ions, which are predominantly formed in the ionization process. However, peptide mass fingerprinting (PMF) with subsequent tandem MS confirmation using these peptide ions is often hampered due to the lower quality of fragment ion mass spectra caused by the higher collision energy necessary for fragmenting singly protonated peptides. Accordingly, peptide ions of higher charge states would be of high interest for analytical purposes, but they are usually not detected in MALDI-MS experiments as they overlap with singly charged matrix clusters and peptide ions. However, when utilizing ion mobility spectrometry (IMS), doubly charged peptide ions can be actively used by separating them from the singly protonated peptides, visualized, and selectively targeted for tandem MS experiments. The generated peptide fragment ion spectra can be used for a more confident protein identification using PMF with tandem MS confirmation, as most doubly protonated peptide ions yield fragment ion mass spectra of higher quality compared to tandem mass spectra of the corresponding singly protonated precursor ions. Mascot protein scores can be increased by approximately 50% when using tandem mass spectra of doubly charged peptide ions, with ion scores up to six times higher compared with ion scores of tandem mass spectra from singly charged precursors.
机译:如今,MALDI-MS中的自下而上的蛋白质鉴定基于采用单电荷的肽离子,其主要形成在电离过程中。然而,由于通过由单独的质子化肽所必需的较高碰撞能量而导致的片段离子质量谱的质量较低,通常会阻碍具有随后的串联MS确认的肽质量指纹识别(PMF)。因此,更高电荷状态的肽离子对分析目的具有高兴趣,但通常在MALDI-MS实验中通常未检测到它们,因为它们与单电荷的基质簇和肽离子重叠。然而,在利用离子迁移率光谱(IMS)时,可以通过将它们从单位质子化肽,可视化和选择性地靶向串联MS实验来主动使用双电荷的肽离子。产生的肽片段离子光谱可用于使用具有串联MS确认的PMF更自信的蛋白质鉴定,因为与相应的单位质子化前体离子的串联质谱相比,大多数均质肽离子产生较高质量的片段离子质谱。当使用双电荷肽离子的串联质谱时,吉祥物蛋白质得分可以增加约50%,离子分数高达6倍,与单独的带电前体的串联质谱相比高达六倍。

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