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Improved Peptide Identification by Targeted Fragmentation Using CID, HCD and ETD on an LTQ-Orbitrap Velos

Journal of Proteome Research · 2011 · Vol. 10(5) · pp. 2377–2388
Christian K. FreseMaarten AltelaarMarco L. HennrichDirk NoltingMartin ZellerJens Griep‐RamingAlbert J. R. HeckShabaz Mohammed

Abstract

Over the past decade peptide sequencing by collision induced dissociation (CID) has become the method of choice in mass spectrometry-based proteomics. The development of alternative fragmentation techniques such as electron transfer dissociation (ETD) has extended the possibilities within tandem mass spectrometry. Recent advances in instrumentation allow peptide fragment ions to be detected with high speed and sensitivity (e.g., in a 2D or 3D ion trap) or at high resolution and high mass accuracy (e.g., an Orbitrap or a ToF). Here, we describe a comprehensive experimental comparison of using ETD, ion-trap CID, and beam type CID (HCD) in combination with either linear ion trap or Orbitrap readout for the large-scale analysis of tryptic peptides. We investigate which combination of fragmentation technique and mass analyzer provides the best performance for the analysis of distinct peptide populations such as N-acetylated, phosphorylated, and tryptic peptides with up to two missed cleavages. We found that HCD provides more peptide identifications than CID and ETD for doubly charged peptides. In terms of Mascot score, ETD FT outperforms the other techniques for peptides with charge states higher than 2. Our data shows that there is a trade-off between spectral quality and speed when using the Orbitrap for fragment ion detection. We conclude that a decision-tree regulated combination of higher-energy collisional dissociation (HCD) and ETD can improve the average Mascot score.

Mass Spectrometry Techniques and ApplicationsAdvanced Proteomics Techniques and ApplicationsAnalytical Chemistry and ChromatographyOrbitrapElectron-transfer dissociationFragmentation (computing)ChemistryIon trapMass spectrometryQuadrupole ion trapPeptideTandem mass spectrometryCollision-induced dissociation

MeSH terms

Cell LineHumansPeptidesSequence Analysis, ProteinProteomicsTandem Mass Spectrometry
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