Coulomb-Assisted Dissociative Electron Attachment: Application to a Model Peptide
- 13 December 2004
- journal article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry A
- Vol. 109 (1) , 250-258
- https://doi.org/10.1021/jp0463114
Abstract
The fragmentation of positively charged gas-phase samples of peptides is used to infer the primary structure of such molecules. In electron capture dissociation (ECD) experiments, very low-energy electrons attach to the sample and rupture bonds to effect the fragmentation. It turns out that ECD fragmentation tends to produce cleavage of very specific types of bonds. In earlier works by this group, it has been suggested that the presence of positive charges produces stabilizing Coulomb potentials that allow low-energy electrons to exothermically attach to σ* orbitals of certain bonds and thus to cleave those bonds. In the present effort, the stabilizing effects of Coulomb potentials due to proximal positive charges are examined for a small model peptide molecule that contains a wide range of bond types. Direct attachment of an electron to the σ* orbitals of eight different bonds as well as indirect σ bond cleavage, in which an electron first binds to a carbonyl CO π* orbital, are examined using ab initio methods. It is found that direct attachment to and subsequent cleavage of any of the eight σ bonds is not likely except for highly positively charged samples. It is also found that attachment to a CO π* orbital followed by cleavage of the nitrogen-to-α-carbon bond is the most likely outcome. Interestingly, this bond cleavage is the one that is seen most commonly in ECD experiments. So, the results presented here seem to offer good insight into one aspect of the ECD process, and they provide a means by which one can estimate (on the basis of a simple Coulomb energy formula) which bonds may be susceptible to cleavage by low-energy electron attachment.Keywords
This publication has 6 references indexed in Scilit:
- Model Calculations Relevant to Disulfide Bond Cleavage via Electron Capture Influenced by Positively Charged GroupsThe Journal of Physical Chemistry B, 2003
- The Only Stable State of O2-Is the X2ΠgGround State and It (Still!) Has an Adiabatic Electron Detachment Energy of 0.45 eVThe Journal of Physical Chemistry A, 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
- resonances in electron transmission (ETS) and x-ray absorption (XAS) spectroscopies of dimethyl(poly)sulphides (, 2, 3)Journal of Physics B: Atomic, Molecular and Optical Physics, 1998
- Ab-Initio Calculations on Arginine−Disulfide Complexes Modeling the One-Electron Reduction of Lysozyme. Comparison to an Experimental ReinvestigationThe Journal of Physical Chemistry A, 1997
- Electron affinities of the first-row atoms revisited. Systematic basis sets and wave functionsThe Journal of Chemical Physics, 1992