1. Academic Validation
  2. Two-Dimensional FAIMS-IMS Characterization of Peptide Conformers with Resolution Exceeding 1000

Two-Dimensional FAIMS-IMS Characterization of Peptide Conformers with Resolution Exceeding 1000

  • Anal Chem. 2022 Apr 26;94(16):6363-6370. doi: 10.1021/acs.analchem.2c00805.
Junhui Li 1 2 Lei Li 1 3 Wenqing Gao 1 3 Shoudong Shi 2 Jiancheng Yu 1 2 Keqi Tang 1 3
Affiliations

Affiliations

  • 1 Institute of Mass Spectrometry, Zhejiang Engineering Research Center of Advanced Mass spectrometry and Clinical Application, Ningbo University, Ningbo 315211, P. R. China.
  • 2 Faculty of Electrical Engineering and Computer Science, Ningbo University, Ningbo 315211, P. R. China.
  • 3 School of Material Science and Chemical Engineering, Ningbo University, Ningbo 315211, P. R. China.
Abstract

A high-performance field asymmetric waveform ion mobility spectrometry (FAIMS)-IMS-MS platform was developed and applied to explore the conformational diversity of the singly and doubly charged bradykinin (BK + H+)+ and (BK + 2H+)2+ ions. With pure N2 as the FAIMS carrier gas, more than ten conformers of (BK + H+)+ can be resolved using FAIMS-IMS, as compared to only four conformers resolved using either FAIMS or IMS alone. Interestingly, multiple conformers of (BK + H+)+ were found to have completely different values of FAIMS compensation voltage (CV), while their IMS drift times were essentially the same, which were also proven experimentally to not result from the structural annealing by the collisional heating in the ion funnel. The separations in the FAIMS and IMS dimensions are substantially orthogonal, and the overall resolving power of two-dimensional FAIMS-IMS separation is largely proportional to the product of the separation resolving powers of FAIMS and IMS. Using a gas mixture of N2/He to further improve the resolving power of the FAIMS separation, the total resolving powers of the combined FAIMS and IMS separation were estimated to be about 1020 and 1400 for (BK + H+)+ and (BK + 2H+)2+ ions, respectively, which are significantly higher than the resolving power of any ion mobility-based separation techniques demonstrated so far. The combined FAIMS-IMS can thus be a much more powerful technique to explore the structural diversity of biomolecules.

Figures
Products