Accessing Different Protein Conformer Ensembles with Tunable Capillary Vibrating Sharp-Edge Spray Ionization

IF 2.9 2区 化学 Q3 CHEMISTRY, PHYSICAL
Daud Sharif, Vikum K. Dewasurendra, Mst Nigar Sultana, Sultan Mahmud, Chandrima Banerjee, Mohammad Rahman, Peng Li, David E. Clemmer, Matthew B. Johnson* and Stephen J. Valentine*, 
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Abstract

Capillary vibrating sharp-edge spray ionization (cVSSI) has been used to control the droplet charging of nebulized microdroplets and monitor effects on protein ion conformation makeup as determined by mass spectrometry (MS). Here it is observed that the application of voltage results in noticeable differences to the charge state distributions (CSDs) of ubiquitin ions. The data can be described most generally in three distinct voltage regions: Under low-voltage conditions (<+200 V, LV regime), low charge states (2+ to 4+ ions) dominate the mass spectra. For midvoltage conditions (+200 to +600 V, MV regime), higher charge states (7+ to 12+ ions) are observed. For high-voltage conditions (>+600 V, HV regime), the “nano-electrospray ionization (nESI)-type distribution” is achieved in which the 6+ and 5+ species are observed as the dominant ions. Analysis of these results suggests that different pathways to progeny nanodroplet production result in the observed ions. For the LV regime, aerodynamic breakup leads to low charge progeny droplets that are selective for the native solution conformation ensemble of ubiquitin (minus multimeric species). In the MV regime, the large droplets persist for longer periods of time, leading to droplet heating and a shift in the conformation ensemble to partially unfolded species. In the HV regime, droplets access progeny nanodroplets faster, leading to native conformation ensemble sampling as indicated by the observed nESI-type CSD. The notable observation of limited multimer formation and adduct ion formation in the LV regime is hypothesized to result from droplet aero breakup resulting in protein and charge carrier partitioning in sampled progeny droplets. The tunable droplet charging afforded by cVSSI presents opportunities to study the effects of the droplet charge, droplet size, and mass spectrometer inlet temperature on the conformer ensemble sampled by the mass spectrometer. Additionally, the approach may provide a tool for rapid comparison of protein stabilities.

利用可调毛细管振动锐边喷雾电离获得不同的蛋白质构象集合
毛细管振动锐边喷雾电离(cVSSI)被用于控制雾化微液滴的电荷,并通过质谱(MS)监测对蛋白质离子构象组成的影响。这里观察到,电压的施加导致泛素离子的电荷态分布(CSDs)的显著差异。数据可以最普遍地描述在三个不同的电压区域:在低电压条件下(<+200 V,低压状态),低电荷态(2+至4+离子)占主导地位的质谱。对于中压条件(+200至+600 V, MV),观察到更高的电荷状态(7+至12+离子)。在高压条件下(>+600 V, HV状态),实现了“纳米电喷雾电离(nESI)型分布”,其中6+和5+种被观察到为主导离子。这些结果的分析表明,不同的途径产生子代纳米液滴导致观察到的离子。在LV状态下,空气动力学破裂导致低电荷的后代液滴,这些液滴对泛素(负多聚体)的天然溶液构象集合具有选择性。在MV状态下,大液滴持续时间较长,导致液滴加热,并将构象集合转变为部分展开的物种。在高压条件下,液滴接近子代纳米液滴的速度更快,导致了观察到的nesi型CSD所表明的天然构象集合采样。在LV状态下,观察到的有限多聚体形成和加合离子形成的显著现象被假设是由于液滴的空气破裂导致了样品子代液滴中蛋白质和载流子的分配。cVSSI提供的可调液滴电荷为研究液滴电荷、液滴大小和质谱仪入口温度对质谱仪采样的共形体系综的影响提供了机会。此外,该方法可为快速比较蛋白质稳定性提供一种工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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