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SLIM Ultrahigh Resolution Ion Mobility Spectrometry Separations of Isotopologues and Isotopomers Reveal Mobility Shifts due to Mass Distribution Changes

机译:同位素和同位素的超薄超高分辨率离子迁移谱分离,同位素和同位素的分离揭示了由于质量分布变化而导致的迁移率变化

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We report on separations of ion isotopologues and isotopomers using ultrahigh-resolution traveling wave-based Structures for Lossless Ion Manipulations with serpentine ultralong path and extended routing ion mobility spectrometry coupled to mass spectrometry (SLIM SUPER IMS-MS). Mobility separations of ions from the naturally occurring ion isotopic envelopes (e.g., [M], [M+1], [M+2], ... ions) showed the first and second isotopic peaks (i.e., [M+1] and [M+2]) for various tetraalkylammonium ions could be resolved from their respective monoisotopic ion peak ([M]) after SLIM SUPER IMS with resolving powers of similar to 400-600. Similar separations were obtained for other compounds (e.g., tetrapeptide ions). Greater separation was obtained using argon versus helium drift gas, as expected from the greater reduced mass contribution to ion mobility described by the Mason-Schamp relationship. To more directly explore the role of isotopic substitutions, we studied a mixture of specific isotopically substituted (N-15, C-13, and H-2) protonated arginine isotopologues. While the separations in nitrogen were primarily due to their reduced mass differences, similar to the naturally occurring isotopologues, their separations in helium, where higher resolving powers could also be achieved, revealed distinct additional relative mobility shifts. These shifts appeared correlated, after correction for the reduced mass contribution, with changes in the ion center of mass due to the different locations of heavy atom substitutions. The origin of these apparent mass distributioninduced mobility shifts was then further explored using a mixture of Iodoacetyl Tandem Mass Tag (iodoTMT) isotopomers (i.e., each having the same exact mass, but with different isotopic substitution sites). Again, the observed mobility shifts appeared correlated with changes in the ion center of mass leading to multiple monoisotopic mobilities being observed for some isotopomers (up to a similar to 0.04% difference in mobility). These mobility shifts thus appear to reflect details of the ion structure, derived from the changes due to ion rotation impacting collision frequency or momentum transfer, and highlight the potential for new approaches for ion structural characterization.
机译:我们使用超高分辨率行进波基结构报告离子同位素和同位素的分离,用于使用蛇形超龙路径的无损离子操纵和耦合到质谱法(SLIM SUPER IMS-MS)的延伸路径离子迁移光谱法。来自天然离子同位素包络(例如,[M],[M + 1],[M + 2],...,离子)的离子的迁移率分离显示第一和第二同位素峰(即,[M + 1]对于各种四烷基铵离子的[M + 2])可以从其各自的单异位离子峰([M])分解,在纤薄的超级IMS具有类似于400-600的典型的功率之后。为其他化合物(例如,四肽离子)获得类似的分离。使用氩气与氦气漂移气体获得更大的分离,从而预期的大规模对由梅森 - Schamp关系描述的离子迁移率的更大减少。更直接探讨同位素取代的作用,我们研究了特异同位素取代(N-15,C-13和H-2)质子化精氨酸同位素的混合物。虽然氮气中的分离主要是由于它们的质量差异的降低,类似于天然存在的同位素,它们在氦中的分离,其中也可以实现更高的分辨率,揭示了不同的额外相对迁移率偏移。在校正大量贡献后,这些换档出现了相关的相关性,随着重质原子取代的不同地点的离子质量变化。然后使用碘乙酰串串质量标签(IODOTMT)同位素(即,具有相同的精确质量,但具有不同的同位素取代位点)进一步探索这些表观批量分布迁移率的起源。同样,观察到的迁移率与导致一些同位素(最高类似于0.04%的迁移率差异)相关的离子肿块的变化出现相关的迁移率相关。因此,这些迁移率似乎反映了离子结构的细节,从引起的离子旋转碰撞碰撞频率或动量转移源自变化,并突出了离子结构表征的新方法的可能性。

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