4.8 Article

Surface-Induced Dissociation of Protein Complexes Selected by Trapped Ion Mobility Spectrometry

期刊

ANALYTICAL CHEMISTRY
卷 93, 期 13, 页码 5513-5520

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.analchem.0c05373

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  1. NIH [S10 OD018507]
  2. NIH Resource for nMS Guided Structural Biology [P41GM128577]

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This study demonstrates the potential of combining TIMS and SID for structural analysis of protein complexes on a mass spectrometer. Results show that TIMS-SID-MS has promise for analyzing both protein complexes and peptides.
Native mass spectrometry (nMS), particularly in conjunction with gas-phase ion mobility spectrometry measurements, has proven useful as a structural biology tool for evaluating the stoichiometry, conformation, and topology of protein complexes. Here, we demonstrate the combination of trapped ion mobility spectrometry (TIMS) and surface-induced dissociation (SID) on a Bruker SolariX XR 15 T FT-ICR mass spectrometer for the structural analysis of protein complexes. We successfully performed SID on mobility-selected protein complexes, including the streptavidin tetramer and cholera toxin B with bound ligands. Additionally, TIMS-SID was employed on a mixture of the peptides desArg1 and desArg9 bradykinin to mobility-separate and identify the individual peptides. Importantly, results show that nativelike conformations can be maintained throughout the TIMS analysis. The TIMS-SID spectra are analogous to SID spectra acquired using quadrupole mass selection, indicating little measurable, if any, structural rearrangement during mobility selection. Mobility parking was used on the ion or mobility of interest and 50-200 SID mass spectra were averaged. High-quality TIMS-SID spectra were acquired over a period of 2-10 min, comparable to or slightly longer than SID coupled with ion mobility on various instrument platforms in our laboratory. The ultrahigh resolving power of the 15 T FT-ICR allowed for the identification and relative quantification of overlapping SID fragments with the same nominal m/z based on isotope patterns, and it shows promise as a platform to probe small mass differences, such as protein/ligand binding or post-translational modifications. These results represent the potential of TIMS-SID-MS for the analysis of both protein complexes and peptides.

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