Back-Electron Transfer Suppresses the Periodic Length Dependence of DNA-Mediated Charge Transport across Adenine Tracts
- 15 October 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in Journal of the American Chemical Society
- Vol. 130 (45), 15150-15156
- https://doi.org/10.1021/ja8052738
Abstract
DNA-mediated charge transport (CT) is exquisitely sensitive to the integrity of the bridging π-stack and is characterized by a shallow distance dependence. These properties are obscured by poor coupling between the donor/acceptor pair and the DNA bridge, or by convolution with other processes. Previously, we found a surprising periodic length dependence for the rate of DNA-mediated CT across adenine tracts monitored by 2-aminopurine fluorescence. Here we report a similar periodicity by monitoring N2-cyclopropylguanosine decomposition by rhodium and anthraquinone photooxidants. Furthermore, we find that this periodicity is attenuated by consequent back-electron transfer (BET), as observed by direct comparison between sequences that allow and suppress BET. Thus, the periodicity can be controlled by engineering the extent of BET across the bridge. The periodic length dependence is not consistent with a periodicity predicted by molecular wire theory but is consistent with a model where multiples of four to five base pairs form an ideal CT-active length of a bridging adenine domain.This publication has 75 references indexed in Scilit:
- Conductivity of a single DNA duplex bridging a carbon nanotube gapNature Nanotechnology, 2008
- Distance-Independent DNA Charge Transport across an Adenine TractAngewandte Chemie International Edition, 2007
- Single-molecule observation of DNA charge transferProceedings of the National Academy of Sciences, 2007
- Charge Transfer in DNAPublished by Wiley ,2005
- Electrochemical Detection of Lesions in DNABioconjugate Chemistry, 2005
- Oxidative Damage by Ruthenium Complexes Containing the Dipyridophenazine Ligand or Its Derivatives: A Focus on IntercalationInorganic Chemistry, 2002
- Influence of Intervening Mismatches on Long-Range Guanine Oxidation in DNA DuplexesJournal of the American Chemical Society, 2001
- How Different DNA-Binding Proteins Affect Long-Range Oxidative Damage to DNABiochemistry, 2001
- Electron Transfer Between Bases in Double Helical DNAScience, 1999
- Photoinduced Electron Transfer in Ethidium-Modified DNA Duplexes: Dependence on Distance and Base StackingJournal of the American Chemical Society, 1997