Literature DB >> 16834057

Vibrational spectroscopy of the G...C base pair: experiment, harmonic and anharmonic calculations, and the nature of the anharmonic couplings.

Brina Brauer1, R Benny Gerber, Martin Kabelác, Pavel Hobza, Joost M Bakker, Ali G Abo Riziq, Mattanjah S de Vries.   

Abstract

The results of harmonic and anharmonic frequency calculations on a guanine-cytosine complex with an enolic structure (a tautomeric form with cytosine in the enol form and with a hydrogen at the 7-position on guanine) are presented and compared to gas-phase IR-UV double resonance spectral data. Harmonic frequencies were obtained at the RI-MP2/cc-pVDZ, RI-MP2/TZVPP, and semiempirical PM3 levels of electronic structure theory. Anharmonic frequencies were obtained by the CC-VSCF method with improved PM3 potential surfaces; the improved PM3 potential surfaces are obtained from standard PM3 theory by coordinate scaling such that the improved PM3 harmonic frequencies are the same as those computed at the RI-MP2/cc-pVDZ level. Comparison of the data with experimental results indicates that the average absolute percentage deviation for the methods is 2.6% for harmonic RI-MP2/cc-pVDZ (3.0% with the inclusion of a 0.956 scaling factor that compensates for anharmonicity), 2.5% for harmonic RI-MP2/TZVPP (2.9% with a 0.956 anharmonicity factor included), and 2.3% for adapted PM3 CC-VSCF; the empirical scaling factor for the ab initio harmonic calculations improves the stretching frequencies but decreases the accuracy of the other mode frequencies. The agreement with experiment supports the adequacy of the improved PM3 potentials for describing the anharmonic force field of the G...C base pair in the spectroscopically probed region. These results may be useful for the prediction of the pathways of vibrational energy flow upon excitation of this system. The anharmonic calculations indicate that anharmonicity along single mode coordinates can be significant for simple stretching modes. For several other cases, coupling between different vibrational modes provides the main contribution to anharmonicity. Examples of strongly anharmonically coupled modes are the symmetric stretch and group torsion of the hydrogen-bonded NH2 group on guanine, the OH stretch and torsion of the enol group on cytosine, and the NH stretch and NH out-of-plane bend of the non-hydrogen-bonded NH group on guanine.

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Year:  2005        PMID: 16834057     DOI: 10.1021/jp051767m

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  3 in total

1.  Localization and anharmonicity of the vibrational modes for GC Watson-Crick and Hoogsteen base pairs.

Authors:  Attila Bende; Diana Bogdan; Cristina M Muntean; Cristian Morari
Journal:  J Mol Model       Date:  2011-03-04       Impact factor: 1.810

2.  N-H stretching excitations in adenosine-thymidine base pairs in solution: pair geometries, infrared line shapes, and ultrafast vibrational dynamics.

Authors:  Christian Greve; Nicholas K Preketes; Henk Fidder; Rene Costard; Benjamin Koeppe; Ismael A Heisler; Shaul Mukamel; Friedrich Temps; Erik T J Nibbering; Thomas Elsaesser
Journal:  J Phys Chem A       Date:  2013-01-07       Impact factor: 2.781

3.  Raman spectra of long chain hydrocarbons: anharmonic calculations, experiment and implications for imaging of biomembranes.

Authors:  Jiří Šebek; Liat Pele; Eric O Potma; R Benny Gerber
Journal:  Phys Chem Chem Phys       Date:  2011-06-14       Impact factor: 3.676

  3 in total

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