Tautomeric selectivity of the excited-state lifetime of guanine/cytosine base pairs: The role of electron-driven proton-transfer processes
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- 5 December 2005
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 102 (50) , 17903-17906
- https://doi.org/10.1073/pnas.0504087102
Abstract
The UV spectra of three different conformers of the guanine/cytosine base pair were recorded recently with UV-IR double-resonance techniques in a supersonic jet [Abo-Riziq, A., Grace, L., Nir, E., Kabelac, M., Hobza, P. & de Vries, M. S. (2005) Proc. Natl. Acad. Sci. USA 102, 20-23]. The spectra provide evidence for a very efficient excited-state deactivation mechanism that is specific for the Watson-Crick structure and may be essential for the photostability of DNA. Here we report results of ab initio electronic-structure calculations for the excited electronic states of the three lowest-energy conformers of the guanine/cytosine base pair. The calculations reveal that electron-driven interbase proton-transfer processes play an important role in the photochemistry of these systems. The exceptionally short lifetime of the UV-absorbing states of the Watson-Crick conformer is tentatively explained by the existence of a barrierless reaction path that connects the spectroscopic (1)pi pi * excited state with the electronic ground state via two electronic curve crossings. For the non-Watson-Crick structures, the photochemically reactive state is located at higher energies, resulting in a barrier for proton transfer and, thus, a longer lifetime of the UV-absorbing (1)pi pi * state. The computational results support the conjecture that the photochemistry of hydrogen bonds plays a decisive role for the photostability of the molecular encoding of the genetic information in isolated DNA base pairs.Keywords
This publication has 15 references indexed in Scilit:
- Efficient Deactivation of a Model Base Pair via Excited-State Hydrogen TransferScience, 2004
- Ab initio studies on the photophysics of the guanine–cytosine base pairPhysical Chemistry Chemical Physics, 2004
- Ab initio study of the excited-state coupled electron–proton-transfer process in the 2-aminopyridine dimerChemical Physics, 2003
- Pairing of Isolated Nucleobases: Double Resonance Laser Spectroscopy of Adenine–ThymineChemphyschem, 2003
- Pairing of the nucleobase guanine studied by IR–UV double-resonance spectroscopy and ab initio calculationsPhysical Chemistry Chemical Physics, 2002
- Pairing of the nucleobases guanine and cytosine in the gas phase studied by IR–UV double-resonance spectroscopy and ab initio calculationsPhysical Chemistry Chemical Physics, 2002
- Potential Energy and Free Energy Surfaces of All Ten Canonical and Methylated Nucleic Acid Base Pairs: Molecular Dynamics and Quantum Chemical ab Initio StudiesThe Journal of Physical Chemistry B, 2001
- The second-order approximate coupled cluster singles and doubles model CC2Chemical Physics Letters, 1995
- Fully optimized contracted Gaussian basis sets for atoms Li to KrThe Journal of Chemical Physics, 1992
- Electronic structure calculations on workstation computers: The program system turbomoleChemical Physics Letters, 1989