Computational Evaluation of Intermolecular Interactions of a Universal Base 3-Nitropyrrole in Stacked Dimers and DNA Duplexes
- 1 June 2005
- journal article
- research article
- Published by Taylor & Francis in Journal of Biomolecular Structure and Dynamics
- Vol. 22 (6) , 735-746
- https://doi.org/10.1080/07391102.2005.10507040
Abstract
The stacking interactions between a universal base of 3-nitropyrrole (3NP) and four canonical nucleobases were studied by means of ab initio molecular orbital calculations. The stabilities of the complexes are comparable to those of the stacked dimers of canonical bases reported previously. The detailed analysis of the interaction energies revealed the importance of the dipole-dipole interaction included in the Hartree-Fock terms to determine the geometry dependence of the stacking energies. It was also clarified that the dispersion energies included in the electron-correlation terms were essential to obtain adequate stabilities. The contribution of the nitro group was evaluated by the comparative studies of pyrrole and 3NP. The increased molecular dipole moment and surface are expected to account for the enhancement of the stability of the stacked dimers containing 3NP. The force field parameters required for calculation of the molecular mechanics of 3NP were obtained for 3NP on the basis of these molecular orbital calculations. The energy-minimized structures obtained by the molecular mechanics calculations of 3NP accorded with those obtained by the molecular orbital calculations described above. A DNA duplex structure containing 3NP-A, 3NP-T, or 3NP-C was calculated by use of these force field parameters. In the case of 3NP-A, the computationally calculated structure was in good agreement with that previously determined by use of 1H-NMR except for the orientation of the nitro group.Keywords
This publication has 31 references indexed in Scilit:
- Toward True DNA Base-Stacking Energies: MP2, CCSD(T), and Complete Basis Set CalculationsJournal of the American Chemical Society, 2002
- Electronic properties, hydrogen bonding, stacking, and cation binding of DNA and RNA basesBiopolymers, 2001
- Factors Contributing to Aromatic Stacking in Water: Evaluation in the Context of DNAJournal of the American Chemical Society, 2000
- Efforts toward Expansion of the Genetic Alphabet: DNA Polymerase Recognition of a Highly Stable, Self-Pairing Hydrophobic BaseJournal of the American Chemical Society, 1999
- A thymidine triphosphate shape analog lacking Watson–Crick pairing ability is replicated with high sequence selectivityProceedings of the National Academy of Sciences, 1997
- Difluorotoluene, a Nonpolar Isostere for Thymine, Codes Specifically and Efficiently for Adenine in DNA ReplicationJournal of the American Chemical Society, 1997
- Non-hydrogen bonding 'terminator' nucleosides increase the 3'-end homogeneity of enzymatic RNA and DNA synthesisNucleic Acids Research, 1996
- Nature of Nucleic Acid−Base Stacking: Nonempirical ab Initio and Empirical Potential Characterization of 10 Stacked Base Dimers. Comparison of Stacked and H-Bonded Base PairsThe Journal of Physical Chemistry, 1996
- Sequence-dependent DNA StructureJournal of Molecular Biology, 1993
- Mechanics of sequence-dependent stacking of bases in B-DNAJournal of Molecular Biology, 1982