Department of Chemistry and Applied Biosciences, ETH Zurich, CH-8093 Zurich, Switzerland.
Waters Corporation, Wilmslow, Cheshire SK9 4AX, U.K.
Anal Chem. 2022 Sep 13;94(36):12435-12443. doi: 10.1021/acs.analchem.2c02406. Epub 2022 Sep 1.
Native mass spectrometry is a powerful tool for the analysis of noncovalent complexes. When coupled with high-resolution ion mobility, this technique can be used to investigate the conformational changes induced in said complexes by different solution or gas-phase conditions. In this study, we describe how a new-generation high-resolution ion mobility instrument equipped with a cyclic ion mobility cell can be utilized for the analysis of large biomolecular systems, including temperature-induced protein aggregates of masses greater than 1.5 MDa, as well as a 63 kDa oligonucleotide complex. The effects of and the interplay between the voltages applied to the different components of the cyclic ion mobility spectrometry system on ion transmission and arrival time distribution were demonstrated using biomolecules covering the / range 2000-10,000. These data were used to establish a theoretical framework for achieving the best separation in the cyclic ion mobility system. Finally, the cyclic ion mobility mass spectrometer was coupled with a temperature-controlled electrospray ionization source to investigate high-mass protein aggregation. This analysis showed that it was possible to continuously monitor the change in abundance for several conformations of MDa aggregates with increasing temperature. This work significantly increases the range of biomolecules that can be analyzed by both cyclic ion mobility and temperature-controlled electrospray ionization mass spectrometry, providing new possibilities for high-resolution ion mobility analysis.
天然质谱是分析非共价复合物的有力工具。当与高分辨率离子淌度结合使用时,该技术可用于研究不同溶液或气相条件下所述复合物所引起的构象变化。在这项研究中,我们描述了如何利用配备循环离子淌度池的新一代高分辨率离子淌度仪器来分析大型生物分子系统,包括温度诱导的超过 1.5 MDa 质量的蛋白质聚集体,以及 63 kDa 寡核苷酸复合物。使用覆盖 2000-10,000 质量范围的生物分子证明了施加到循环离子淌度谱系统不同组件上的电压对离子传输和到达时间分布的影响和相互作用。这些数据用于为循环离子淌度系统中实现最佳分离建立理论框架。最后,将循环离子淌度质谱仪与控温电喷雾源耦合,以研究高分子量蛋白质聚集。该分析表明,有可能随着温度的升高连续监测 MDa 聚集体的几种构象的丰度变化。这项工作大大增加了可以通过循环离子淌度和控温电喷雾质谱分析的生物分子的范围,为高分辨率离子淌度分析提供了新的可能性。