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An LC-IMS-MS Platform Providing Increased Dynamic Range for High-Throughput Proteomic Studies

Authors :
Athena A. Schepmoes
Richard D. Smith
William F. Danielson
Daniel J. Orton
Brian L. LaMarche
David C. Prior
Mikhail E. Belov
Anoop Mayampurath
Yehia M. Ibrahim
Derek F. Hopkins
Eric A. Livesay
Erin S. Baker
Ronald J. Moore
Keqi Tang
Source :
Journal of Proteome Research. 9:997-1006
Publication Year :
2010
Publisher :
American Chemical Society (ACS), 2010.

Abstract

A high-throughput approach and platform using 15 minute reversed-phase capillary liquid chromatography (RPLC) separations in conjunction with ion mobility spectrometry-mass spectrometry (IMS-MS) measurements was evaluated for the rapid analysis of complex proteomics samples. To test the separation quality of the short LC gradient, a sample was prepared by spiking twenty reference peptides at varying concentrations from 1 ng/mL to 10 µg/mL into a tryptic digest of mouse blood plasma and analyzed with both a LC-Linear Ion Trap Fourier Transform (FT) MS and LC-IMS-TOF MS. The LC-FT MS detected thirteen out of the twenty spiked peptides that had concentrations ≥100 ng/mL. In contrast, the drift time selected mass spectra from the LC-IMS-TOF MS analyses yielded identifications for nineteen of the twenty peptides with all spiking levels present. The greater dynamic range of the LC-IMS-TOF MS system could be attributed to two factors. First, the LC-IMS-TOF MS system enabled drift time separation of the low concentration spiked peptides from the high concentration mouse peptide matrix components, reducing signal interference and background, and allowing species to be resolved that would otherwise be obscured by other components. Second, the automatic gain control (AGC) in the linear ion trap of the hybrid FT MS instrument limits the number of ions that are accumulated to reduce space charge effects and achieve high measurement accuracy, but in turn limits the achievable dynamic range compared to the IMS-TOF instrument.

Details

ISSN :
15353907 and 15353893
Volume :
9
Database :
OpenAIRE
Journal :
Journal of Proteome Research
Accession number :
edsair.doi.dedup.....9f8b890e4057136c2b74b44b3a370f42
Full Text :
https://doi.org/10.1021/pr900888b