Issue 11, 2006

Low ionic strength reduces cytosine photoreactivity in UVC-irradiated isolated DNA

Abstract

Exposure of DNA to far-UV radiation leads to the formation of several types of dimeric lesions, including cyclobutane dimers and (6–4) photoproducts. In order to gain insights into the main parameters driving DNA photochemistry, the effect of ionic strength on the yield of formation of these photoproducts was investigated in UVC-irradiated samples of isolated genomic DNA. The main consequence of lowering the ionic strength was a decrease in the UVC-induced formation of thyminecytosine and cytosinecytosine photoproducts. The reactivity of thyminethymine and cytosinethymine doublets was hardly affected. Evidence was obtained against a major role played by duplex denaturation in these observations. A more likely explanation is a change in the DNA structure as the result of a larger extent of protonation at low counter-ions concentration.

Graphical abstract: Low ionic strength reduces cytosine photoreactivity in UVC-irradiated isolated DNA

Supplementary files

Article information

Article type
Paper
Submitted
28 Mar 2006
Accepted
07 Jul 2006
First published
16 Aug 2006

Photochem. Photobiol. Sci., 2006,5, 1045-1051

Low ionic strength reduces cytosine photoreactivity in UVC-irradiated isolated DNA

T. Douki, Photochem. Photobiol. Sci., 2006, 5, 1045 DOI: 10.1039/B604517K

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