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首页> 外文期刊>Analytical chemistry >Avoiding H/D Scrambling with Minimal Ion Transmission Loss for HDX-MS/MS-ETD Analysis on a High-Resolution Q-TOF Mass Spectrometer
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Avoiding H/D Scrambling with Minimal Ion Transmission Loss for HDX-MS/MS-ETD Analysis on a High-Resolution Q-TOF Mass Spectrometer

机译:用高分辨率Q-TOF质谱仪对HDX-MS / MS-ETD分析的最小离子传输损耗来避免HCX-D离子传输损耗

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摘要

Hydrogen/deuterium exchange monitored by mass spectrometry (HDX-MS) enables the study of protein dynamics by measuring the time-resolved deuterium incorporation into a protein incubated in D2O. Using electron-based fragmentation in the gas phase it is possible to measure deuterium uptake at single-residue resolution. However, a prerequisite for this approach is that the solution-phase labeling is conserved in the gas phase prior to precursor fragmentation. It is therefore essential to reduce or even avoid intramolecular hydrogen/deuterium migration, which causes randomization of the deuterium labels along the peptide (hydrogen scrambling). Here, we describe an optimization strategy for reducing scrambling to a negligible level while minimizing the impact on sensitivity on a high-resolution Q-TOF equipped with ETD and an electrospray ionization interface consisting of a glass transfer capillary followed by a dual ion funnel. In our strategy we narrowed down the optimization to two accelerating potentials, and we defined the optimization of these in a simple rule by accounting for their interdependency in relation to scrambling and transmission efficiency. Using this rule, we were able to reduce scrambling from 75% to below 5% on average using the highly scrambling-sensitive quadruply charged P1 peptide scrambling probe resulting in a minor 33% transmission loss. To demonstrate the applicability of this approach, we probe the dynamics of certain regions in cytochrome c.
机译:通过质谱(HDX-MS)监测的氢气/氘交换通过测量在D2O中孵育的蛋白质中的时间分离的氘掺入来研究蛋白质动力学。在气相中使用基于电子的碎片,可以测量单残基分辨率的氘吸收。然而,这种方法的先决条件是在前体碎片之前在气相中保守溶液相标记。因此,重要的是减少甚至避免分子内氢/氘迁移,这导致氘标记的随机化沿肽(氢丙糊化)。这里,我们描述了一种优化策略,用于减少争夺速度可忽略的水平,同时最小化配备有ETD的高分辨率Q-TOF对高分辨率Q-TOF的灵敏度的影响,以及由玻璃转移毛细管组成的电喷雾电离界面,然后是双离子漏斗。在我们的策略中,我们将优化缩小到两个加速潜力,我们通过对与扰扰和传输效率相关的相互依赖性来定义这些规则中的优化。使用这条规则,使用高度加扰敏感的四向电荷的P1肽加扰探针将扰扰从75%降至5%以下,导致较小的33%传输损耗。为了证明这种方法的适用性,我们探讨了细胞色素C中某些区域的动态。

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