The Excited State Dynamics of a Mutagenic Guanosine Etheno Adduct Investigated by Femtosecond Fluorescence Spectroscopy and Quantum Mechanical Calculations

Author:

Lizondo‐Aranda Paloma1ORCID,Gustavsson Thomas2ORCID,Martínez‐Fernández Lara3ORCID,Improta Roberto4ORCID,Lhiaubet‐Vallet Virginie1ORCID

Affiliation:

1. Instituto Universitario Mixto de Tecnología Química (UPV-CSIC) Universitat Politècnica de Valencia, Consejo Superior de Investigaciones Científicas Avda de los Naranjos s/n Valencia 46022 Spain

2. Université Paris-Saclay CEA, LIDYL 91191 Gif-sur-Yvette France

3. Departamento de Química Física de Materiales Instituto de Química Física Blas Cabrera, IQF-CSIC Calle Serrano 119 28006 Madrid Spain

4. Istituto di Biostrutture e Bioimmagini, Consiglio Nazionale delle Ricerche Via De Amicis 95 I-80145 Napoli Italy

Abstract

AbstractFemtosecond fluorescence upconversion experiments were combined with CASPT2 and time dependent DFT calculations to characterize the excited state dynamics of the mutagenic etheno adduct 1,N2‐etheno‐2’‐deoxyguanosine (ϵdG). This endogenously formed lesion is attracting great interest because of its ubiquity in human tissues and its highly mutagenic properties. The ϵdG fluorescence is strongly modified with respect to that of the canonical nucleoside dG, notably by an about 6‐fold increase in fluorescence lifetime and quantum yield at neutral pH. In addition, femtosecond fluorescence upconversion experiments reveal the presence of two emission bands with maxima at 335 nm for the shorter‐lived and 425 nm for the longer‐lived. Quantum mechanical calculations rationalize these findings and provide absorption and fluorescence spectral shapes similar to the experimental ones. Two different bright minima are located on the potential energy surface of the lowest energy singlet excited state. One planar minimum, slightly more stable, is associated with the emission at 335 nm, whereas the other one, with a bent etheno ring, is associated with the red‐shifted emission.

Funder

HORIZON EUROPE European Innovation Council

Ministerio de Ciencia e Innovación

Conselleria d'Educació, Investigació, Cultura i Esport

Publisher

Wiley

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