6533b86cfe1ef96bd12c8b00
RESEARCH PRODUCT
Complete-active-space second-order perturbation theory (CASPT2//CASSCF) study of the dissociative electron attachment in canonical DNA nucleobases caused by low-energy electrons (0-3 eV).
Antonio Francés-monerrisDaniel Roca-sanjuánManuela MerchánJavier Segarra‐martísubject
Valence (chemistry)GuaninePyrimidineGuanineAdenineDNA BreaksGeneral Physics and AstronomyElectronsHydrogen atomDNAMolecular physicsIonNucleobaseThyminechemistry.chemical_compoundCytosinechemistryThermodynamicsComplete active spacePhysical and Theoretical ChemistryAtomic physicsUracilThymineHydrogendescription
Low-energy (0-3 eV) ballistic electrons originated during the irradiation of biological material can interact with DNA/RNA nucleobases yielding transient-anion species which undergo decompositions. Since the discovery that these reactions can eventually lead to strand breaking of the DNA chains, great efforts have been dedicated to their study. The main fragmentation at the 0-3 eV energy range is the ejection of a hydrogen atom from the specific nitrogen positions. In the present study, the methodological approach introduced in a previous work on uracil [I. González-Ramírez et al., J. Chem. Theory Comput. 8, 2769-2776 (2012)] is employed to study the DNA canonical nucleobases fragmentations of N-H bonds induced by low-energy electrons. The approach is based on minimum energy path and linear interpolation of internal coordinates computations along the N-H dissociation channels carried out at the complete-active-space self-consistent field//complete-active-space second-order perturbation theory level. On the basis of the calculated theoretical quantities, new assignations for the adenine and cytosine anion yield curves are provided. In addition, the π1 (-) and π2 (-) states of the pyrimidine nucleobases are expected to produce the temporary anions at electron energies close to 1 and 2 eV, respectively. Finally, the present theoretical results do not allow to discard neither the dipole-bound nor the valence-bound mechanisms in the range of energies explored, suggesting that both possibilities may coexist in the experiments carried out with the isolated nucleobases.
year | journal | country | edition | language |
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2015-12-10 | The Journal of chemical physics |