Base pair motions control the rates and distance dependencies of reductive and oxidative DNA charge transfer
- 5 July 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (27), 10192-10195
- https://doi.org/10.1073/pnas.0600957103
Abstract
In 1999, Wan et al. [Proc. Natl. Acad. Sci. USA 96, 6014-6019] published a pioneering paper that established the entanglement between DNA base pair motions and the transfer time of the charge carrier. The DNA assemblies contained an ethidium covalently bound via a flexible alkyl chain to the 5' hydroxyl group of the DNA backbone. Although covalently attached, the loose way in which the ethidium was linked to DNA allowed for large degrees of conformational freedom and thus raised some concern with respect to conformational inhomogeneity. In this letter, we report studies on a different set of ethidium DNA conjugates. In contrast to the "Caltech systems," these conjugates contain ethidium tightly incorporated (as a base pair surrogate) into the DNA base stack, opposite to an abasic site analog. Despite the tight binding, we found that charge transfer from the photoexcited ethidium base pair surrogate across two or more base pairs is several orders of magnitude slower than in case of the DNA systems bearing the tethered ethidium. To further broaden the scope of this account, we compared (oxidative) electron hole transfer and (reductive) electron transfer using the same ethidium chromophore as a charge donor in combination with two different charge acceptors. We found that both electron and hole transfer are characterized by similar rates and distance dependencies. The results demonstrate the importance of nuclear motions and conformational flexibility and underline the presence of a base gating mechanism, which appears to be generic to electronic transfer processes through pi-stacked nucleic acids.Keywords
This publication has 39 references indexed in Scilit:
- UCSF Chimera—A visualization system for exploratory research and analysisJournal of Computational Chemistry, 2004
- Conformationally Gated Rate Processes in Biological MacromoleculesThe Journal of Physical Chemistry A, 2001
- Photophysical Processes in the Complexes of DNA with Ethidium Bromide and Acridine Orange: A Femtosecond StudyThe Journal of Physical Chemistry B, 2000
- Luminescence quenching by DNA-bound viologens: effect of reactant identity on efficiency and dynamics of electron transfer in DNAJournal of Photochemistry and Photobiology B: Biology, 2000
- Photoinduced Electron Transfer in Ethidium-Modified DNA Duplexes: Dependence on Distance and Base StackingJournal of the American Chemical Society, 1997
- Stability and structure of DNA oligonucleotides containing non-specific base analoguesJournal of Molecular Biology, 1997
- How Easily Oxidizable Is DNA? One-Electron Reduction Potentials of Adenosine and Guanosine Radicals in Aqueous SolutionJournal of the American Chemical Society, 1997
- Photoinduced electron transfer reactions between copper ions and ethidium bromide in polynucleotidesThe Journal of Physical Chemistry, 1995
- Laser flash photolysis of DNA-intercalated ethidium bromide in the presence of methylviologenThe Journal of Physical Chemistry, 1987
- Potentiometric Studies on SemiquinonesJournal of the American Chemical Society, 1933