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Gas Phase Stability of Protein Ions in a Cyclic Ion Mobility Spectrometry Traveling Wave Device

机译:循环离子迁移光谱行波装置中蛋白离子的气相稳定性

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Ion mobility mass spectrometry (IM-MS) allows separation of native protein ions into "conformational families". Increasing the IM resolving power should allow finer structural information to be obtained and can be achieved by increasing the length of the IM separator. This, however, increases the time that protein ions spend in the gas phase and previous experiments have shown that the initial conformations of small proteins can be lost within tens of milliseconds. Here, we report on investigations of protein ion stability using a multipass traveling wave (TW) cyclic IM (cIM) device. Using this device, minimal structural changes were observed for Cytochrome C after hundreds of milliseconds, while no changes were observed for a larger multimeric complex (Concanavalin A). The geometry of the instrument (Q-cIM-ToF) also enables complex tandem IM experiments to be performed, which were used to obtain more detailed collision-induced unfolding pathways for Cytochrome C. The instrument geometry provides unique capabilities with the potential to expand the field of protein analysis via IM-MS.
机译:离子迁移率质谱(IM-MS)允许将天然蛋白离子分离成“构象系列”。增加IM分辨率应该允许获得更精细的结构信息,并且可以通过增加IM分离器的长度来实现。然而,这增加了气相中的蛋白质离子和之前的实验中的蛋白质离子的时间表明,小蛋白质的初始构象可以在几十毫秒内丢失。在此,我们使用多脂行驶波(TW)循环IM(CIM)装置报告蛋白质离子稳定性的研究。使用该装置,在数百毫秒后对细胞色素C观察到最小的结构变化,同时对较大的多聚体复合物(康丹林A)没有观察到任何变化。仪器(Q-CIM-TOF)的几何形状还使得能够进行复杂的串联IM实验,其用于获得细胞色素C的更详细的碰撞诱导的展开途径。仪器几何形状提供了独特的能力,具有扩展的可能性通过IM-MS的蛋白质分析领域。

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