• LOGIN
    Login with username and password
Repository logo

BORIS Portal

Bern Open Repository and Information System

  • Publications
  • Theses
  • Research Data
  • Projects
  • Organizations
  • Researchers
  • More
  • Collections
  • Statistics
  • LOGIN
    Login with username and password
Repository logo
Unibern.ch
  1. Home
  2. Publications
  3. What Hinders Electron Transfer Dissociation (ETD) of DNA Cations?
 

What Hinders Electron Transfer Dissociation (ETD) of DNA Cations?

Options
  • Details
  • Files
BORIS DOI
10.7892/boris.112533
Official URL
https://www.asms.org
Publisher DOI
10.1007/s13361-017-1791-z
PubMed ID
28932996
Description
Radical activation methods, such as electron transfer dissociation (ETD), produce structural information complementary to collision-induced dissociation. Herein, electron transfer dissociation of 3-fold protonated DNA hexamers was studied to gain insight into the fragmentation mechanism. The fragmentation patterns of a large set of DNA hexamers confirm cytosine as the primary target of electron transfer. The reported data reveal backbone cleavage by internal electron transfer from the nucleobase to the phosphate linker leading either to a•/w or d/z• ion pairs. This reaction pathway contrasts with previous findings on the dissociation processes after electron capture by DNA cations, suggesting multiple, parallel dissociation channels. However, all these channels merely result in partial fragmentation of the precursor ion because the charge-reduced DNA radical cations are quite stable. Two hypotheses are put forward to explain the low dissociation yield of DNA radical cations: it is either attributed to non-covalent interactions between complementary fragments or to the stabilization of the unpaired electron in stacked nucleobases. MS3 experiments suggest that the charge-reduced species is the intact oligonucleotide. Moreover, introducing abasic sites significantly increases the dissociation yield of DNA cations. Consequently, the stabilization of the unpaired electron by π-π-stacking provides an appropriate rationale for the high intensity of DNA radical cations after electron transfer.
Date of Publication
2017
Publication Type
Article
Subject(s)
500 Science > 570 Life sciences; biology
500 Science > 540 Chemistry
500 Science
Language(s)
en
Contributor(s)
Hari, Yvonne Ilona
Departement für Chemie und Biochemie (DCB)
Leumann, Christianorcid-logo
Departement für Chemie und Biochemie (DCB)
Schürch, Stefan
Departement für Chemie und Biochemie (DCB)
Additional Credits
Departement für Chemie und Biochemie (DCB)
Series
Journal of the American Society for Mass Spectrometry
Publisher
Springer
ISSN
1044-0305
Access(Rights)
restricted
Show full item
BORIS Portal
Bern Open Repository and Information System
Build: dd892c [ 9.04. 8:30]
Explore
  • Projects
  • Funding
  • Publications
  • Research Data
  • Organizations
  • Researchers
  • Audiovisual Material
  • Software & other digital items
  • Events
More
  • About BORIS Portal
  • Send Feedback
  • Cookie settings
  • Service Policy
Follow us on
  • Mastodon
  • YouTube
  • LinkedIn
UniBe logo