Evaluation and Optimization of Mass Spectrometric Settings during Data-dependent Acquisition Mode: Focus on LTQ-Orbitrap Mass Analyzers

被引:123
作者
Kalli, Anastasia [1 ]
Smith, Geoffrey T. [1 ]
Sweredoski, Michael J. [1 ]
Hess, Sonja [1 ]
机构
[1] CALTECH, Beckman Inst, Div Biol, Proteome Explorat Lab, Pasadena, CA 91125 USA
关键词
shotgun proteomics; CID data-dependent acquisition mode; identification rates; LTQ-Orbitrap; MS and MS/MS parameters; SHOTGUN PROTEOMIC EXPERIMENTS; SOLID-PHASE EXTRACTION; STRONG CATION-EXCHANGE; PROTEIN IDENTIFICATION; ENZYMATIC DIGESTION; SAMPLE PREPARATION; PEPTIDE IDENTIFICATIONS; STATISTICAL VALIDATION; SEARCH ALGORITHMS; MEMBRANE PROTEOME;
D O I
10.1021/pr3011588
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Mass-spectrometry-based proteomics has evolved as the preferred method for the analysis of complex proteomes. Undoubtedly, recent advances in mass spectrometry instrumentation have greatly enhanced proteomic analysis. A popular instrument platform in proteomics research is the LTQ-Orbitrap mass analyzer. In this tutorial, we discuss the significance of evaluating and optimizing mass spectrometric settings on the LTQ-Orbitrap during CID data-dependent acquisition (DDA) mode to improve protein and peptide identification rates. We focus on those MS and MS/MS parameters that have been systematically examined and evaluated by several researchers and are commonly used during DDA. More specifically, we discuss the effect of mass resolving power, preview mode for FTMS scan, monoisotopic precursor selection, signal threshold for triggering MS/MS events, number of microscans per MS/MS scan, number of MS/MS events, automatic gain control target value (ion population) for MS and MS/MS, maximum ion injection time for MS/MS, rapid and normal scan rate, and prediction of ion injection time. We furthermore present data from the latest generation LTQ-Orbitrap system, the Orbitrap Elite, along with recommended MS and MS/MS parameters. The Orbitrap Elite outperforms the Orbitrap Classic in terms of scan speed, sensitivity, dynamic range, and resolving power and results in higher identification rates. Several of the optimized MS parameters determined on the LTQ-Orbitrap Classic and XL were easily transferable to the Orbitrap Elite, whereas others needed to be reevaluated. Finally, the Q Exactive and HCD are briefly discussed, as well as sample preparation, LC-optimization, and bioinformatics analysis. We hope this tutorial will serve as guidance for researchers new to the field of proteomics and assist in achieving optimal results.
引用
收藏
页码:3071 / 3086
页数:16
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