Peptide Orientation Affects Selectivity in Ion-Exchange Chromatography
Open Access
- 19 May 2010
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 82 (12) , 5253-5259
- https://doi.org/10.1021/ac100651k
Abstract
Here we demonstrate that separation of proteolytic peptides, having the same net charge and one basic residue, is affected by their specific orientation toward the stationary phase in ion-exchange chromatography. In electrostatic repulsion−hydrophilic interaction chromatography (ERLIC) with an anion-exchange material, the C-terminus of the peptides is, on average, oriented toward the stationary phase. In cation exchange, the average peptide orientation is the opposite. Data with synthetic peptides, serving as orientation probes, indicate that in tryptic/Lys-C peptides the C-terminal carboxyl group appears to be in a zwitterionic bond with the side chain of the C-terminal Lys/Arg residue. In effect, the side chain is then less basic than the N-terminus, accounting for the specific orientation of tryptic and Lys-C peptides. Analyses of larger sets of peptides, generated from lysates by either Lys-N, Lys-C, or trypsin, reveal that specific peptide orientation affects the ability of charged side chains, such as phosphate residues, to influence retention. Phosphorylated residues that are remote in the sequence from the binding site affect retention less than those that are closer. When a peptide contains multiple charged sites, then orientation is observed to be less rigid and retention tends to be governed by the peptide’s net charge rather than its sequence. These general observations could be of value in confirming a peptide’s identification and, in particular, phosphosite assignments in proteomics analyses. More generally, orientation accounts for the ability of chromatography to separate peptides of the same composition but different sequence.Keywords
This publication has 24 references indexed in Scilit:
- Multidimensional LC Separations in Shotgun ProteomicsPublished by American Chemical Society (ACS) ,2008
- Electrostatic Repulsion Hydrophilic Interaction Chromatography for Isocratic Separation of Charged Solutes and Selective Isolation of PhosphopeptidesAnalytical Chemistry, 2007
- Requirements for prediction of peptide retention time in reversed-phase high-performance liquid chromatography: Hydrophilicity/hydrophobicity of side-chains at the N- and C-termini of peptides are dramatically affected by the end-groups and locationJournal of Chromatography A, 2007
- Titanium dioxide as a chemo-affinity solid phase in offline phosphopeptide chromatography prior to HPLC-MS/MS analysisNature Protocols, 2006
- Neural network prediction of peptide separation in strong anion exchange chromatographyBioinformatics, 2006
- Improved Peptide Elution Time Prediction for Reversed-Phase Liquid Chromatography-MS by Incorporating Peptide Sequence InformationAnalytical Chemistry, 2006
- Comprehensive Identification of Phosphorylation Sites in Postsynaptic Density PreparationsMolecular & Cellular Proteomics, 2006
- Improving Sensitivity in Shotgun Proteomics Using a Peptide-Centric Database with Reduced Complexity: Protease Cleavage and SCX Elution Rules from Data Mining of MS/MS SpectraAnalytical Chemistry, 2006
- Direct analysis of protein complexes using mass spectrometryNature Biotechnology, 1999
- Hydrophilic interaction/cation-exchange chromatography for separation of amphipathic α-helical peptidesJournal of Chromatography A, 1998