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A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations

The affinity of the polyether ionophore salinomycin to bind IA/IB metal ions was accessed using the Gibbs free energy of the competition reaction between SalNa (taken as a reference) and its rival ions: [M(+)-solution] + [SalNa] → [SalM] + [Na(+)-solution] (M = Li, K, Rb, Cs, Cu, Ag, Au). The DFT/PC...

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Autores principales: Dudev, Todor, Cheshmedzhieva, Diana, Dorkov, Peter, Pantcheva, Ivayla
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779476/
https://www.ncbi.nlm.nih.gov/pubmed/35056843
http://dx.doi.org/10.3390/molecules27020532
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author Dudev, Todor
Cheshmedzhieva, Diana
Dorkov, Peter
Pantcheva, Ivayla
author_facet Dudev, Todor
Cheshmedzhieva, Diana
Dorkov, Peter
Pantcheva, Ivayla
author_sort Dudev, Todor
collection PubMed
description The affinity of the polyether ionophore salinomycin to bind IA/IB metal ions was accessed using the Gibbs free energy of the competition reaction between SalNa (taken as a reference) and its rival ions: [M(+)-solution] + [SalNa] → [SalM] + [Na(+)-solution] (M = Li, K, Rb, Cs, Cu, Ag, Au). The DFT/PCM computations revealed that the ionic radius, charge density and accepting ability of the competing metal cations, as well as the dielectric properties of the solvent, have an influence upon the selectivity of salinomycin. The optimized structures of the monovalent metal complexes demonstrate the flexibility of the ionophore, allowing the coordination of one or two water ligands in SalM-W(1) and SalM-W(2), respectively. The metal cations are responsible for the inner coordination sphere geometry, with coordination numbers spread between 2 (Au(+)), 4 (Li(+) and Cu(+)), 5/6 (Na(+), K(+), Ag(+)), 6/7 (Rb(+)) and 7/8 (Cs(+)). The metals’ affinity to salinomycin in low-polarity media follows the order of Li(+) > Cu(+) > Na(+) > K(+) > Au(+) > Ag(+) > Rb(+) > Cs(+), whereas some derangement takes place in high-dielectric environment: Li(+) ≥ Na(+) > K(+) > Cu(+) > Au(+) > Ag(+) > Rb(+) > Cs(+).
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spelling pubmed-87794762022-01-22 A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations Dudev, Todor Cheshmedzhieva, Diana Dorkov, Peter Pantcheva, Ivayla Molecules Article The affinity of the polyether ionophore salinomycin to bind IA/IB metal ions was accessed using the Gibbs free energy of the competition reaction between SalNa (taken as a reference) and its rival ions: [M(+)-solution] + [SalNa] → [SalM] + [Na(+)-solution] (M = Li, K, Rb, Cs, Cu, Ag, Au). The DFT/PCM computations revealed that the ionic radius, charge density and accepting ability of the competing metal cations, as well as the dielectric properties of the solvent, have an influence upon the selectivity of salinomycin. The optimized structures of the monovalent metal complexes demonstrate the flexibility of the ionophore, allowing the coordination of one or two water ligands in SalM-W(1) and SalM-W(2), respectively. The metal cations are responsible for the inner coordination sphere geometry, with coordination numbers spread between 2 (Au(+)), 4 (Li(+) and Cu(+)), 5/6 (Na(+), K(+), Ag(+)), 6/7 (Rb(+)) and 7/8 (Cs(+)). The metals’ affinity to salinomycin in low-polarity media follows the order of Li(+) > Cu(+) > Na(+) > K(+) > Au(+) > Ag(+) > Rb(+) > Cs(+), whereas some derangement takes place in high-dielectric environment: Li(+) ≥ Na(+) > K(+) > Cu(+) > Au(+) > Ag(+) > Rb(+) > Cs(+). MDPI 2022-01-14 /pmc/articles/PMC8779476/ /pubmed/35056843 http://dx.doi.org/10.3390/molecules27020532 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
Dudev, Todor
Cheshmedzhieva, Diana
Dorkov, Peter
Pantcheva, Ivayla
A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title_full A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title_fullStr A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title_full_unstemmed A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title_short A DFT/PCM Study on the Affinity of Salinomycin to Bind Monovalent Metal Cations
title_sort dft/pcm study on the affinity of salinomycin to bind monovalent metal cations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8779476/
https://www.ncbi.nlm.nih.gov/pubmed/35056843
http://dx.doi.org/10.3390/molecules27020532
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