Kinlein Zackary, Clowers Brian H
Department of Chemistry, Washington State University, Pullman, Washington 99164, United States.
Anal Chem. 2024 Apr 23;96(16):6450-6458. doi: 10.1021/acs.analchem.4c00692. Epub 2024 Apr 11.
With its capacity to store and translate ions across considerable distances and times, traveling wave structures for lossless ion manipulations (TW-SLIM) provide the foundation to expand the scope of ion mobility spectrometry (IMS) experiments. While promising, the dynamic electric fields and consequential ion-neutral collisions used to realize extensive degrees of separation have a considerable impact on the empirical results and the fundamental interpretation of observed arrival time distributions. Using a custom-designed set of TW-SLIM boards (∼9 m) coupled with a time-of-flight mass spectrometer (SLIM-ToF), we detail the capacity to systematically alter the gas-phase distribution of select peptide conformers. In addition to discussing the role charge-transfer may play in TW-SLIM experiments that occur at extended time scales, the ability of the SLIM-ToF to perform tandem IMS was leveraged to confirm that both the compact and elongated conformers of bradykinin undergo interconversion within the SLIM. Storage experiments in which ions are confined within SLIM using static potential wells suggest that factors aside from TW-induced ion motion contribute to interconversion. Further investigation into this matter suggests that the use of radio frequency (RF) fields to confine ions within SLIM may play a role in ion heating. Aside from interconversion, storage experiments also provide insight into charge transfer behavior over the course of extended periods. The results of the presented experiments suggest that considerations should be taken when analyzing labile species and inform strategies for the TW-SLIM design and method development.
无损离子操纵行波结构(TW-SLIM)具有在相当长的距离和时间内存储和转换离子的能力,为扩展离子迁移谱(IMS)实验的范围奠定了基础。尽管前景广阔,但用于实现广泛分离程度的动态电场以及随之而来的离子-中性碰撞对实验结果和观测到的到达时间分布的基本解释有相当大的影响。我们使用定制设计的一组TW-SLIM板(约9米)与飞行时间质谱仪(SLIM-ToF)相结合,详细阐述了系统改变选定肽构象异构体气相分布的能力。除了讨论电荷转移在长时间尺度的TW-SLIM实验中可能发挥的作用外,还利用SLIM-ToF进行串联IMS的能力来确认缓激肽的紧凑构象和细长构象在SLIM内都会发生相互转化。使用静态势阱将离子限制在SLIM内的存储实验表明,除了TW诱导的离子运动外,还有其他因素导致相互转化。对此事的进一步研究表明,使用射频(RF)场将离子限制在SLIM内可能在离子加热中起作用。除了相互转化,存储实验还提供了对长时间内电荷转移行为的深入了解。所展示实验的结果表明,在分析不稳定物种时应予以考虑,并为TW-SLIM设计和方法开发提供策略依据。