Effects of Cation Charge-Site Identity and Position on Electron-Transfer Dissociation of Polypeptide Cations
- 19 September 2007
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 129 (40) , 12232-12243
- https://doi.org/10.1021/ja0736764
Abstract
The effect of cation charge site on gas-phase ion/ion reactions between multiply protonated model peptides and singly charged anions has been examined. Insights are drawn from the quantitative examination of the product partitioning into competing channels, such as proton transfer (PT) versus electron transfer (ET), electron transfer followed by dissociation (ETD) versus electron transfer without dissociation (ET, no D), and fragmentation of backbone bonds versus fragmentation of side chains. Peptide cations containing protonated lysine, arginine, and histidine showed similar degrees of electron transfer, which were much higher than the peptide having fixed-charge sites, that is, trimethyl ammonium groups. Among the four types of cation charge sites, protonated histidine showed the highest degree of ET, no D, while no apparent intact electron-transfer products were observed for peptides with protonated lysine or arginine. All cation types showed side chain losses with arginine yielding the greatest fraction and lysine the smallest. The above trends were observed for each electron-transfer reagent. However, proton transfer was consistently higher with 1,3-dinitrobeznene anions, as was the fraction of side-chain losses. The partitioning of products among the various electron-transfer channels provides evidence for several of the mechanisms that have been proposed to account for electron-transfer dissociation and electron-capture dissociation. The simplest picture to account for all of the observations recognizes that several mechanisms can contribute to the observed products. Furthermore, the identity of the anionic reagent and the positions of the charge sites can affect the relative contributions of the competing mechanisms.Keywords
This publication has 26 references indexed in Scilit:
- The Role of Excited Rydberg States in Electron Transfer DissociationThe Journal of Physical Chemistry B, 2006
- Parallel Ion Parking of Protein MixturesAnalytical Chemistry, 2005
- Simulating Electron Transfer Attachment to a Positively Charged Model PeptideThe Journal of Physical Chemistry A, 2005
- Electron Transfer versus Proton Transfer in Gas-Phase Ion/Ion Reactions of Polyprotonated PeptidesJournal of the American Chemical Society, 2005
- Selective cation removal from gaseous polypeptide ions: proton vs. sodium ion abstraction via ion/ion reactionsPhysical Chemistry Chemical Physics, 2004
- Formation and Characterization of Protein−Protein Complexes in VacuoJournal of the American Chemical Society, 2003
- Reactions of polypeptide ions with electrons in the gas phaseMass Spectrometry Reviews, 2003
- Electron Capture Dissociation of Gaseous Multiply-Charged Proteins Is Favored at Disulfide Bonds and Other Sites of High Hydrogen Atom AffinityJournal of the American Chemical Society, 1999
- Electron Capture Dissociation of Multiply Charged Protein Cations. A Nonergodic ProcessJournal of the American Chemical Society, 1998
- Ion/ion chemistry of high-mass multiply charged ionsMass Spectrometry Reviews, 1998