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The Hidden Routes of DNA Photostability: Charge and Proton Transfer in Excited Cytosine-Guanine Tetramers
Journal article   Peer reviewed

The Hidden Routes of DNA Photostability: Charge and Proton Transfer in Excited Cytosine-Guanine Tetramers

Juliana G. de Abrantes, Josene M. Toldo, Mario Barbatti and Marco Sacchi
The Journal of Physical Chemistry Letters, Vol.In Press(In Press)
30/04/2026

Abstract

DNA’s extraordinary resistance to UV-induced damage—essential to the survival of genetic material since prebiotic times—stems from its ability to rapidly and efficiently dissipate electronic excitation energy through damage-free relaxation channels. Multiple decay pathways, at different time scales, have been identified. Yet, the detailed interplay of these competing decay pathways has remained elusive. Using nonadiabatic surface-hopping dynamics at the TDDFT level, we investigate the excited-state behaviour of DNA tetramers composed of stacked guanine–cytosine (GC)2 dimers in alternating and non-alternating sequences. Following photoexcitation, both systems populate a G→C charge-transfer state, with inter-strand proton transfer emerging as the dominant relaxation mechanism. Overall, the simulations reveal a complex network of coupled charge- and proton-transfer events, highlighting the diversity and subtlety of DNA’s excited-state dynamics. These findings provide a mechanistic picture of how stacked bases in DNA efficiently funnel excitation energy back to the ground state.
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Author's Accepted Manuscript Restricted. Access maybe granted on request., This file will be open access upon publication. CC BY V4.0
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Author's Accepted Manuscript (supplemental) Restricted. Access maybe granted on request., This file will be open access upon publication. CC BY V4.0

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