Issue 4, 2005

Density functional calculations on dissociation reactions of radical anions of 5-fluorouracil derivatives

Abstract

Fragmentation reactions upon electron attachment to 5-fluorouracil with CH2R substituents at N1 have been evaluated by means of density functional calculations. The present results show that electron attachment to R = F, HC[double bond, length as m-dash]O or CN derivatives follows a stepwise pathway with radical anions as intermediates. For these compounds, the most stable species formed is the π radical anion which bears an unpaired spin density at the C6[double bond, length as m-dash]C5–C4[double bond, length as m-dash]O π-conjugated system of the uracil ring. Cleavage of the N1–CH2R or N1CH2–R bond of these intermediates proceeds through the mixing of the π and σ states by means of proper geometrical fluctuations along the reaction coordinate. No σ radical anion could be characterised on any of these σ basal potential surfaces. A noticeable decrease in the activation energy for the N1–CH2R bond dissociation was observed for R = H–C[double bond, length as m-dash]O or CN. Therefore, such derivatives with unsaturated groups positioned vicinal to the N1–C1′ bond are identified as targets for the development of novel radiation-activated antitumour drugs. On the other hand, the electron transfer to the compounds with R = Cl, Br is dissociative, i.e. it occurs without the mediation of radical anions. For compounds with R = halides or R = NO2, the fragmentation of the N1CH2–R bond is the preferred dissociation pathway.

Graphical abstract: Density functional calculations on dissociation reactions of radical anions of 5-fluorouracil derivatives

Article information

Article type
Paper
Submitted
15 Sep 2004
Accepted
09 Dec 2004
First published
19 Jan 2005

Org. Biomol. Chem., 2005,3, 649-653

Density functional calculations on dissociation reactions of radical anions of 5-fluorouracil derivatives

G. L. Borosky and A. B. Pierini, Org. Biomol. Chem., 2005, 3, 649 DOI: 10.1039/B414255A

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