Fast Protonation of Adenosine and of Its Radical Anion Formed by Hydrated Electron Attack; A Nanosecond Optical and Dc-conductivity Pulse Radiolysis Study
- 1 January 1987
- journal article
- research article
- Published by Taylor & Francis in International Journal of Radiation Biology
- Vol. 52 (5) , 745-753
- https://doi.org/10.1080/09553008714552251
Abstract
The study of the reaction of the hydrated electron with adenosine by optical and dc-conductivity pulse radiolysis on nano- and microsecond timescales has been carried out in an attempt to answer the question whether the electron adduct radical becomes protonated or not. The following conclusions have been reached: (1) the reaction of the hydrated electron with adenosine is followed by a water-mediated protonation, which must be complete with 5 ns; (2) no spectral indication of a further protonation of the protonated electron adduct of adenosine of 2′-deoxyadenosine has been found between 40 and 5000 ns; (3) the equilibrium reaction between radiation produced H3O+ and adenosine with a pKa of 3·5 plays an important role in the kinetics of the conductivity transients.This publication has 8 references indexed in Scilit:
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