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Determination of ion mobility collision cross sections for unresolved isomeric mixtures using tandem mass spectrometry and chemometric deconvolution

机译:串联质谱和化学计量去卷积法测定未分离异构体混合物的离子迁移碰撞截面

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摘要

Ion mobility (IM) is an important analytical technique for determining ion collision cross section (CCS) values in the gas-phase and gaining insight into molecular structures and conformations. However, limited instrument resolving powers for IM may restrict adequate characterization of conformationally similar ions, such as structural isomers, and reduce the accuracy of IM-based CCS calculations. Recently, we introduced an automated technique for extracting “pure” IM and collision-induced dissociation (CID) mass spectra of IM overlapping species using chemometric deconvolution of post-IM/CID mass spectrometry (MS) data [J. Am. Soc. Mass Spectrom., 2014, >25, 1810–1819]. Here we extend those capabilities to demonstrate how extracted IM profiles can be used to calculate accurate CCS values of peptide isomer ions which are not fully resolved by IM. We show that CCS values obtained from deconvoluted IM spectra match with CCS values measured from the individually analyzed corresponding peptides on uniform field IM instrumentation. We introduce an approach that utilizes experimentally determined IM arrival time (AT) “shift factors” to compensate for ion acceleration variations during post-IM/CID and significantly improve the accuracy of the calculated CCS values. Also, we discuss details of this IM deconvolution approach and compare empirical CCS values from traveling wave (TW)IM-MS and drift tube (DT)IM-MS with theoretically calculated CCS values using the projected superposition approximation (PSA). For example, experimentally measured deconvoluted TWIM-MS mean CCS values for doubly-protonated RYGGFM, RMFGYG, MFRYGG, and FRMYGG peptide isomers were 288.8 Å2, 295.1 Å2, 296.8 Å2, and 300.1 Å2; all four of these CCS values were within 1.5% of independently measured DTIM-MS values.
机译:离子迁移率(IM)是一种重要的分析技术,可用于确定气相中的离子碰撞截面(CCS)值并深入了解分子结构和构象。但是,有限的IM仪器分辨能力可能会限制构象相似离子(例如结构异构体)的充分表征,并降低基于IM的CCS计算的准确性。最近,我们引入了一种自动技术,该技术利用IM / CID后质谱(MS)数据的化学解卷积提取IM重叠物种的“纯” IM和碰撞诱导解离(CID)质谱[J.上午。 Soc。质谱,2014年,> 25 ,1810-1819年]。在这里,我们扩展了这些功能,以演示如何将提取的IM配置文件用于计算IM不能完全解析的肽异构体离子的准确CCS值。我们表明,从去卷积的IM谱图获得的CCS值与在统一现场IM仪器上从单独分析的相应肽段测得的CCS值匹配。我们介绍了一种方法,该方法利用实验确定的IM到达时间(AT)“偏移因子”来补偿IM / CID后的离子加速度变化,并显着提高计算出的CCS值的准确性。此外,我们将讨论此IM反卷积方法的详细信息,并使用投影叠加近似(PSA)将行波(TW)IM-MS和漂移管(DT)IM-MS的经验CCS值与理论计算的CCS值进行比较。例如,对双质子化RYGGFM,RMFGYG,MFRYGG和FRMYGG肽异构体进行实验测量的去卷积TWIM-MS平均CCS值分别为288.8Å 2 ,295.1Å 2 ,296.8 Å 2 和300.1Å 2 ;所有这四个CCS值均在独立测量的DTIM-MS值的1.5%以内。

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