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Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective

The adeninate anion (Ade(−)) is a useful nucleophile used in the synthesis of many prodrugs (including those for HIV AIDS treatment). It exists as a contact ion-pair (CIP) with Na(+) and K(+) (M(+)) but the site of coordination is not obvious from spectroscopic data. Herein, a molecular-wide and ele...

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Autores principales: Buyens, Dominique M. S., Pilcher, Lynne A., Cukrowski, Ignacy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505275/
https://www.ncbi.nlm.nih.gov/pubmed/36144844
http://dx.doi.org/10.3390/molecules27186111
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author Buyens, Dominique M. S.
Pilcher, Lynne A.
Cukrowski, Ignacy
author_facet Buyens, Dominique M. S.
Pilcher, Lynne A.
Cukrowski, Ignacy
author_sort Buyens, Dominique M. S.
collection PubMed
description The adeninate anion (Ade(−)) is a useful nucleophile used in the synthesis of many prodrugs (including those for HIV AIDS treatment). It exists as a contact ion-pair (CIP) with Na(+) and K(+) (M(+)) but the site of coordination is not obvious from spectroscopic data. Herein, a molecular-wide and electron density-based (MOWED) computational approach implemented in the implicit solvation model showed a strong preference for bidentate ion coordination at the N3 and N9 atoms. The N3N9-CIP has (i) the strongest inter-ionic interaction, by −30 kcal mol(−1), with a significant (10–15%) covalent contribution, (ii) the most stabilized bonding framework for Ade(−), and (iii) displays the largest ion-induced polarization of Ade(−), rendering the N3 and N9 the most negative and, hence, most nucleophilic atoms. Alkylation of the adeninate anion at these two positions can therefore be readily explained when the metal coordinated complex is considered as the nucleophile. The addition of explicit DMSO solvent molecules did not change the trend in most nucleophilic N-atoms of Ade(−) for the in-plane M-Ade complexes in M-Ade-(DMSO)(4) molecular systems. MOWED-based studies of the strength and nature of interactions between DMSO solvent molecules and counter ions and Ade(−) revealed an interesting and unexpected chemistry of intermolecular chemical bonding.
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spelling pubmed-95052752022-09-24 Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective Buyens, Dominique M. S. Pilcher, Lynne A. Cukrowski, Ignacy Molecules Article The adeninate anion (Ade(−)) is a useful nucleophile used in the synthesis of many prodrugs (including those for HIV AIDS treatment). It exists as a contact ion-pair (CIP) with Na(+) and K(+) (M(+)) but the site of coordination is not obvious from spectroscopic data. Herein, a molecular-wide and electron density-based (MOWED) computational approach implemented in the implicit solvation model showed a strong preference for bidentate ion coordination at the N3 and N9 atoms. The N3N9-CIP has (i) the strongest inter-ionic interaction, by −30 kcal mol(−1), with a significant (10–15%) covalent contribution, (ii) the most stabilized bonding framework for Ade(−), and (iii) displays the largest ion-induced polarization of Ade(−), rendering the N3 and N9 the most negative and, hence, most nucleophilic atoms. Alkylation of the adeninate anion at these two positions can therefore be readily explained when the metal coordinated complex is considered as the nucleophile. The addition of explicit DMSO solvent molecules did not change the trend in most nucleophilic N-atoms of Ade(−) for the in-plane M-Ade complexes in M-Ade-(DMSO)(4) molecular systems. MOWED-based studies of the strength and nature of interactions between DMSO solvent molecules and counter ions and Ade(−) revealed an interesting and unexpected chemistry of intermolecular chemical bonding. MDPI 2022-09-19 /pmc/articles/PMC9505275/ /pubmed/36144844 http://dx.doi.org/10.3390/molecules27186111 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Buyens, Dominique M. S.
Pilcher, Lynne A.
Cukrowski, Ignacy
Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title_full Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title_fullStr Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title_full_unstemmed Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title_short Coordination Sites for Sodium and Potassium Ions in Nucleophilic Adeninate Contact ion-Pairs: A Molecular-Wide and Electron Density-Based (MOWED) Perspective
title_sort coordination sites for sodium and potassium ions in nucleophilic adeninate contact ion-pairs: a molecular-wide and electron density-based (mowed) perspective
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505275/
https://www.ncbi.nlm.nih.gov/pubmed/36144844
http://dx.doi.org/10.3390/molecules27186111
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