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PMID: 10021416 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Long-range oxidative damage to DNA: effects of distance and sequence.

Chemistry & biology ·Vol. 6 ·No. 2 ·1999-02-00 ·Pages 85-97

Núñez ME, Hall DB, Barton JK

Abstract

Oxidative damage to DNA in vivo can lead to mutations and cancer. DNA damage and repair studies have not yet revealed whether permanent oxidative lesions are generated by charges migrating over long distances. Both photoexcited *Rh(III) and ground-state Ru(III) intercalators were previously shown to oxidize guanine bases from a remote site in oligonucleotide duplexes by DNA-mediated electron transfer. Here we examine much longer charge-transport distances and explore the sensitivity of the reaction to intervening sequences. Oxidative damage was examined in a series of DNA duplexes containing a pendant intercalating photooxidant. These studies revealed a shallow dependence on distance and no dependence on the phasing orientation of the oxidant relative to the site of damage, 5'-GG-3'. The intervening DNA sequence has a significant effect on the yield of guanine oxidation, however. Oxidation through multiple 5'-TA-3' steps is substantially diminished compared to through other base steps. We observed intraduplex guanine oxidation by tethered *Rh(III) and Ru(III) over a distance of 200 A. The distribution of oxidized guanine varied as a function of temperature between 5 and 35 degrees C, with an increase in the proportion of long-range damage (> 100 A) occurring at higher temperatures. Guanines are oxidized as a result of DNA-mediated charge transport over significant distances (e.g. 200 A). Although long-range charge transfer is dependent on distance, it appears to be modulated by intervening sequence and sequence-dependent dynamics. These discoveries hold important implications with respect to DNA damage in vivo.

MeSH Terms
DNA/chemistry DNA Damage Electron Transport Guanine/chemistry Oligonucleotides/chemistry,radiation effects Oxidants, Photochemical/chemistry Oxidation-Reduction Rhodium/chemistry Ruthenium/chemistry
Chemicals
Oligonucleotides Oxidants, Photochemical Guanine Ruthenium DNA Rhodium
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Núñez M E
Division of Chemistry and Chemical Engineering, California Institute ofTechnology, Pasadena 91125, USA.
Hall D B
Barton J K
Article Info
Journal
Chemistry & biology
Abbr.
Chem Biol
ISSN
1074-5521
Published
1999-02-00
Pages
85-97
Language
English
Region
United States
NLM ID
9500160
Subset
IM
Grants
NIGMS NIH HHS · GM49216 · United States
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