Cargando…
B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands
We have computationally investigated the structure and stability of all 16 combinations of two out of the four natural DNA bases A, T, G and C in a di-2′-deoxyribonucleoside-monophosphate model DNA strand as well as in 10 double-strand model complexes thereof, using dispersion-corrected density func...
Autores principales: | , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
WILEY-VCH Verlag
2013
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3892189/ https://www.ncbi.nlm.nih.gov/pubmed/24551565 http://dx.doi.org/10.1002/open.201300019 |
_version_ | 1782299481745653760 |
---|---|
author | Barone, Giampaolo Fonseca Guerra, Célia Bickelhaupt, F Matthias |
author_facet | Barone, Giampaolo Fonseca Guerra, Célia Bickelhaupt, F Matthias |
author_sort | Barone, Giampaolo |
collection | PubMed |
description | We have computationally investigated the structure and stability of all 16 combinations of two out of the four natural DNA bases A, T, G and C in a di-2′-deoxyribonucleoside-monophosphate model DNA strand as well as in 10 double-strand model complexes thereof, using dispersion-corrected density functional theory (DFT-D). Optimized geometries with B-DNA conformation were obtained through the inclusion of implicit water solvent and, in the DNA models, of sodium counterions, to neutralize the negative charge of the phosphate groups. The results obtained allowed us to compare the relative stability of isomeric single and double strands. Moreover, the energy of the Watson–Crick pairing of complementary single strands to form double-helical structures was calculated. The latter furnished the following increasing stability trend of the double-helix formation energy: d(TpA)(2) <d(CpA)(2) <d(ApT)(2) <d(ApA)(2) <d(GpT)(2) <d(GpA)(2) <d(ApG)(2) <d(CpG)(2) <d(GpG)(2) <d(GpC)(2), where the energy differences between the last four dimers, d(ApG)(2), d(CpG)(2), d(GpG)(2) and d(GpC)(2), is within 4.0 kcal mol(−1), and the energy between the most and the least stable isomers is 13.4 kcal mol(−1). This trend shows that the formation energy essentially increases with the number of hydrogen bonds per base pair, that is two between A and T and three between G and C. Superimposed on this main trend are more subtle effects that depend on the order in which bases occur within a strand from the 5’- to the 3’-end. |
format | Online Article Text |
id | pubmed-3892189 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2013 |
publisher | WILEY-VCH Verlag |
record_format | MEDLINE/PubMed |
spelling | pubmed-38921892014-02-18 B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands Barone, Giampaolo Fonseca Guerra, Célia Bickelhaupt, F Matthias ChemistryOpen Full Papers We have computationally investigated the structure and stability of all 16 combinations of two out of the four natural DNA bases A, T, G and C in a di-2′-deoxyribonucleoside-monophosphate model DNA strand as well as in 10 double-strand model complexes thereof, using dispersion-corrected density functional theory (DFT-D). Optimized geometries with B-DNA conformation were obtained through the inclusion of implicit water solvent and, in the DNA models, of sodium counterions, to neutralize the negative charge of the phosphate groups. The results obtained allowed us to compare the relative stability of isomeric single and double strands. Moreover, the energy of the Watson–Crick pairing of complementary single strands to form double-helical structures was calculated. The latter furnished the following increasing stability trend of the double-helix formation energy: d(TpA)(2) <d(CpA)(2) <d(ApT)(2) <d(ApA)(2) <d(GpT)(2) <d(GpA)(2) <d(ApG)(2) <d(CpG)(2) <d(GpG)(2) <d(GpC)(2), where the energy differences between the last four dimers, d(ApG)(2), d(CpG)(2), d(GpG)(2) and d(GpC)(2), is within 4.0 kcal mol(−1), and the energy between the most and the least stable isomers is 13.4 kcal mol(−1). This trend shows that the formation energy essentially increases with the number of hydrogen bonds per base pair, that is two between A and T and three between G and C. Superimposed on this main trend are more subtle effects that depend on the order in which bases occur within a strand from the 5’- to the 3’-end. WILEY-VCH Verlag 2013-12 2013-08-16 /pmc/articles/PMC3892189/ /pubmed/24551565 http://dx.doi.org/10.1002/open.201300019 Text en © 2013 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA. This is an open access article under the terms of the Creative Commons Attribution-NonCommercial License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes. http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation. |
spellingShingle | Full Papers Barone, Giampaolo Fonseca Guerra, Célia Bickelhaupt, F Matthias B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title | B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title_full | B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title_fullStr | B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title_full_unstemmed | B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title_short | B-DNA Structure and Stability as Function of Nucleic Acid Composition: Dispersion-Corrected DFT Study of Dinucleoside Monophosphate Single and Double Strands |
title_sort | b-dna structure and stability as function of nucleic acid composition: dispersion-corrected dft study of dinucleoside monophosphate single and double strands |
topic | Full Papers |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3892189/ https://www.ncbi.nlm.nih.gov/pubmed/24551565 http://dx.doi.org/10.1002/open.201300019 |
work_keys_str_mv | AT baronegiampaolo bdnastructureandstabilityasfunctionofnucleicacidcompositiondispersioncorrecteddftstudyofdinucleosidemonophosphatesingleanddoublestrands AT fonsecaguerracelia bdnastructureandstabilityasfunctionofnucleicacidcompositiondispersioncorrecteddftstudyofdinucleosidemonophosphatesingleanddoublestrands AT bickelhauptfmatthias bdnastructureandstabilityasfunctionofnucleicacidcompositiondispersioncorrecteddftstudyofdinucleosidemonophosphatesingleanddoublestrands |