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TWAVE 离子淌度谱仪中离子有多热?

How hot are your ions in TWAVE ion mobility spectrometry?

机构信息

Department of Chemistry, University of California, Berkeley, CA 94720-1460, USA.

出版信息

J Am Soc Mass Spectrom. 2012 Mar;23(3):553-62. doi: 10.1007/s13361-011-0313-7. Epub 2011 Dec 28.

Abstract

Effective temperatures of ions during traveling wave ion mobility spectrometry (TWIMS) analysis were measured using singly protonated leucine enkephalin dimer as a chemical thermometer by monitoring dissociation of the dimer into monomer, as well as the subsequent dissociation of monomer into a-, b-, and y-ions, as a function of instrumental parameters. At fixed helium cell and TWIMS cell gas flow rates, the extent of dissociation does not vary significantly with either the wave velocity or wave height, except at low (<500 m/s) wave velocities that are not commonly used. Increasing the flow rate of nitrogen gas into the TWIMS cell and decreasing the flow rate of helium gas into the helium cell resulted in greater dissociation. However, the mobility distributions of the fragment ions formed by dissociation of the dimer upon injection into the TWIMS cell are nearly indistinguishable from those of fragment ions formed in the collision cell prior to TWIMS analysis for all TWIMS experiments. These results indicate that heating and dissociation occur when ions are injected into the TWIMS cell, and that the effective temperature subsequently decreases to a point at which no further dissociation is observed during the TWIMS analysis. An upper limit to the effective ion temperature of 449 K during TWIMS analysis is obtained at a helium flow rate of 180 mL/min, TWIMS flow rate of 80 mL/min, and traveling wave height of 40 V, which is well below previously reported values. Effects of ion heating in TWIMS on gas-phase protein conformation are presented.

摘要

在 traveling wave ion mobility spectrometry (TWIMS) 分析中,有效离子温度是通过使用单质子化亮氨酸脑啡肽二聚体作为化学温度计来测量的,通过监测二聚体分解为单体,以及随后单体分解为 a-、b-和 y-离子,作为仪器参数的函数。在固定氦气池和 TWIMS 池气体流速的情况下,除了不常用的低(<500 m/s)波速外,解离程度与波速或波高都没有显著变化。增加氮气进入 TWIMS 池的流量并减少氦气进入氦气池的流量会导致更大的解离。然而,在所有 TWIMS 实验中,当将二聚体在 TWIMS 池中的解离形成的碎片离子注入到 TWIMS 池时,形成的碎片离子的迁移率分布几乎与在 TWIMS 分析之前在碰撞池中形成的碎片离子的迁移率分布无法区分。这些结果表明,当离子注入 TWIMS 池时会发生加热和解离,并且随后的有效温度会降低到在 TWIMS 分析过程中不再观察到进一步解离的程度。在氦气流速为 180 mL/min、TWIMS 流速为 80 mL/min 和行波高度为 40 V 的条件下,在 TWIMS 分析过程中获得了 449 K 的有效离子温度上限,远低于之前报道的值。介绍了 TWIMS 中离子加热对气相蛋白质构象的影响。

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