Literature DB >> 30007914

A Novel Differential Ion Mobility Device Expands the Depth of Proteome Coverage and the Sensitivity of Multiplex Proteomic Measurements.

Sibylle Pfammatter1,2, Eric Bonneil1, Francis P McManus1, Satendra Prasad3, Derek J Bailey3, Michael Belford3, Jean-Jacques Dunyach3, Pierre Thibault4,2.   

Abstract

The depth of proteomic analyses is often limited by the overwhelming proportion of confounding background ions that compromise the identification and quantification of low abundance peptides. To alleviate these limitations, we present a new high field asymmetric waveform ion mobility spectrometry (FAIMS) interface that can be coupled to the Orbitrap Tribrid mass spectrometers. The interface provides several advantages over previous generations of FAIMS devices, including ease of operation, robustness, and high ion transmission. Replicate LC-FAIMS-MS/MS analyses (n = 100) of HEK293 protein digests showed stable ion current over extended time periods with uniform peptide identification on more than 10,000 distinct peptides. For complex tryptic digest analyses, the coupling of FAIMS to LC-MS/MS enabled a 30% gain in unique peptide identification compared with non-FAIMS experiments. Improvement in sensitivity facilitated the identification of low abundance peptides, and extended the limit of detection by almost an order of magnitude. The reduction in chimeric MS/MS spectra using FAIMS also improved the precision and the number of quantifiable peptides when using isobaric labeling with tandem mass tag (TMT) 10-plex reagent. We compared quantitative proteomic measurements for LC-MS/MS analyses performed using synchronous precursor selection (SPS) and LC-FAIMS-MS/MS to profile the temporal changes in protein abundance of HEK293 cells following heat shock for periods up to 9 h. FAIMS provided 2.5-fold increase in the number of quantifiable peptides compared with non-FAIMS experiments (30,848 peptides from 2,646 proteins for FAIMS versus 12,400 peptides from 1,229 proteins with SPS). Altogether, the enhancement in ion transmission and duty cycle of the new FAIMS interface extended the depth and comprehensiveness of proteomic analyses and improved the precision of quantitative measurements.
© 2018 Pfammatter et al.

Entities:  

Keywords:  Heat shock; Ion mobility; Mass Spectrometry; Protein Identification; Protein Turnover; Proteostasis; Quantification; Tandem Mass Spectrometry; isobaric peptide labeling; tandem mass tag

Mesh:

Substances:

Year:  2018        PMID: 30007914      PMCID: PMC6166672          DOI: 10.1074/mcp.TIR118.000862

Source DB:  PubMed          Journal:  Mol Cell Proteomics        ISSN: 1535-9476            Impact factor:   5.911


  70 in total

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10.  Systematic analysis of protein turnover in primary cells.

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Journal:  Nat Commun       Date:  2018-02-15       Impact factor: 14.919

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Journal:  J Proteome Res       Date:  2018-12-12       Impact factor: 4.466

2.  Characterization and Optimization of Multiplexed Quantitative Analyses Using High-Field Asymmetric-Waveform Ion Mobility Mass Spectrometry.

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7.  Optimized Workflow for Multiplexed Phosphorylation Analysis of TMT-Labeled Peptides Using High-Field Asymmetric Waveform Ion Mobility Spectrometry.

Authors:  Devin K Schweppe; Scott F Rusin; Steven P Gygi; Joao A Paulo
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8.  Ion Activation Methods for Peptides and Proteins.

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10.  Isobaric Tag-Based Protein Profiling across Eight Human Cell Lines Using High-Field Asymmetric Ion Mobility Spectrometry and Real-Time Database Searching.

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Journal:  Proteomics       Date:  2020-10-26       Impact factor: 3.984

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