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Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study

The non-natural ethynylmethylpyridone C-nucleoside (W), a thymidine (T) analogue that can be incorporated in oligonucleotides by automated synthesis, has recently been reported to form a high fidelity base pair with adenosine (A) and to be well accommodated in B-DNA duplexes. The enhanced binding af...

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Autores principales: Chawla, Mohit, Gorle, Suresh, Shaikh, Abdul Rajjak, Oliva, Romina, Cavallo, Luigi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7940798/
https://www.ncbi.nlm.nih.gov/pubmed/33738080
http://dx.doi.org/10.1016/j.csbj.2021.02.006
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author Chawla, Mohit
Gorle, Suresh
Shaikh, Abdul Rajjak
Oliva, Romina
Cavallo, Luigi
author_facet Chawla, Mohit
Gorle, Suresh
Shaikh, Abdul Rajjak
Oliva, Romina
Cavallo, Luigi
author_sort Chawla, Mohit
collection PubMed
description The non-natural ethynylmethylpyridone C-nucleoside (W), a thymidine (T) analogue that can be incorporated in oligonucleotides by automated synthesis, has recently been reported to form a high fidelity base pair with adenosine (A) and to be well accommodated in B-DNA duplexes. The enhanced binding affinity for A of W, as compared to T, makes it an ideal modification for biotechnological applications, such as efficient probe hybridization for the parallel detection of multiple DNA strands. In order to complement the experimental study and rationalize the impact of the non-natural W nucleoside on the structure, stability and dynamics of DNA structures, we performed quantum mechanics (QM) calculations along with molecular dynamics (MD) simulations. Consistently with the experimental study, our QM calculations show that the A:W base pair has an increased stability as compared to the natural A:T pair, due to an additional CH-π interaction. Furthermore, we show that mispairing between W and guanine (G) causes a distortion in the planarity of the base pair, thus explaining the destabilization of DNA duplexes featuring a G:W pair. MD simulations show that incorporation of single or multiple consecutive A:W pairs in DNA duplexes causes minor changes to the intra- and inter-base geometrical parameters, while a moderate widening/shrinking of the major/minor groove of the duplexes is observed. QM calculations applied to selected stacks from the MD simulations also show an increased stacking energy for W, over T, with the neighboring bases.
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spelling pubmed-79407982021-03-17 Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study Chawla, Mohit Gorle, Suresh Shaikh, Abdul Rajjak Oliva, Romina Cavallo, Luigi Comput Struct Biotechnol J Research Article The non-natural ethynylmethylpyridone C-nucleoside (W), a thymidine (T) analogue that can be incorporated in oligonucleotides by automated synthesis, has recently been reported to form a high fidelity base pair with adenosine (A) and to be well accommodated in B-DNA duplexes. The enhanced binding affinity for A of W, as compared to T, makes it an ideal modification for biotechnological applications, such as efficient probe hybridization for the parallel detection of multiple DNA strands. In order to complement the experimental study and rationalize the impact of the non-natural W nucleoside on the structure, stability and dynamics of DNA structures, we performed quantum mechanics (QM) calculations along with molecular dynamics (MD) simulations. Consistently with the experimental study, our QM calculations show that the A:W base pair has an increased stability as compared to the natural A:T pair, due to an additional CH-π interaction. Furthermore, we show that mispairing between W and guanine (G) causes a distortion in the planarity of the base pair, thus explaining the destabilization of DNA duplexes featuring a G:W pair. MD simulations show that incorporation of single or multiple consecutive A:W pairs in DNA duplexes causes minor changes to the intra- and inter-base geometrical parameters, while a moderate widening/shrinking of the major/minor groove of the duplexes is observed. QM calculations applied to selected stacks from the MD simulations also show an increased stacking energy for W, over T, with the neighboring bases. Research Network of Computational and Structural Biotechnology 2021-02-23 /pmc/articles/PMC7940798/ /pubmed/33738080 http://dx.doi.org/10.1016/j.csbj.2021.02.006 Text en © 2021 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Chawla, Mohit
Gorle, Suresh
Shaikh, Abdul Rajjak
Oliva, Romina
Cavallo, Luigi
Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title_full Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title_fullStr Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title_full_unstemmed Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title_short Replacing thymine with a strongly pairing fifth Base: A combined quantum mechanics and molecular dynamics study
title_sort replacing thymine with a strongly pairing fifth base: a combined quantum mechanics and molecular dynamics study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7940798/
https://www.ncbi.nlm.nih.gov/pubmed/33738080
http://dx.doi.org/10.1016/j.csbj.2021.02.006
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