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H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O

Reactions in water between the Cu(2)(µ-EGTA) chelate (EGTA = ethylene-bis(oxyethyleneimino)tetraacetate(4-) ion) and Hdap in molar ratios 1:1 and 1:2 yield only blue crystals of the ternary compound [Cu(4)(μ-EGTA)(2)(μ-H(N(3))dap)(2)(H(2)O)(2)]·7H(2)O (1), which has been studied via single-crystal X...

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Autores principales: Mousavi, Homa, García-Rubiño, María Eugenia, Choquesillo-Lazarte, Duane, Castiñeiras, Alfonso, Lezama, Luis, Frontera, Antonio, Niclós-Gutiérrez, Juan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488833/
https://www.ncbi.nlm.nih.gov/pubmed/37687091
http://dx.doi.org/10.3390/molecules28176263
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author Mousavi, Homa
García-Rubiño, María Eugenia
Choquesillo-Lazarte, Duane
Castiñeiras, Alfonso
Lezama, Luis
Frontera, Antonio
Niclós-Gutiérrez, Juan
author_facet Mousavi, Homa
García-Rubiño, María Eugenia
Choquesillo-Lazarte, Duane
Castiñeiras, Alfonso
Lezama, Luis
Frontera, Antonio
Niclós-Gutiérrez, Juan
author_sort Mousavi, Homa
collection PubMed
description Reactions in water between the Cu(2)(µ-EGTA) chelate (EGTA = ethylene-bis(oxyethyleneimino)tetraacetate(4-) ion) and Hdap in molar ratios 1:1 and 1:2 yield only blue crystals of the ternary compound [Cu(4)(μ-EGTA)(2)(μ-H(N(3))dap)(2)(H(2)O)(2)]·7H(2)O (1), which has been studied via single-crystal X-ray diffraction and various physical methods (thermal stability, spectral and magnetic properties), as well as DFT theoretical calculations. In the crystal, uncoordinated water is disordered. The tetranuclear complex molecule also has some irrelevant disorder in an EGTA-ethylene moiety. In the complex molecule, both bridging organic molecules act as binucleating ligands. There are two distorted five- and two six-coordinated Cu(II) centers. Each half of EGTA acts as a tripodal tetradentate Cu(II) chelator, with a mer-NO2 + O(ether, distal) conformation. Hdap exhibits the tautomer H(N3)dap, with the dissociable H-atom on its less basic N-heterocyclic atom. These features favor the efficient cooperation between Cu-N7 or Cu-N9 bonds with appropriate O-EGTA atoms, as N6-H···O or N3-H···O interligand interactions, respectively. The bridging role of both organics determines the tetranuclear dimensionality of the complex. In this crystal, such molecules associate in zig-zag chains built by alternating π–π interactions between the five- or six-atom rings of Hdap ligands of adjacent molecules. DFT theoretical calculations (using two different theoretical models and characterized by the quantum theory of “atoms in molecules”) reveal the importance of these π–π interactions between Hdap ligands, as well as those corresponding to the referred hydrogen bonds in the contributed tetranuclear molecule.
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spelling pubmed-104888332023-09-09 H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O Mousavi, Homa García-Rubiño, María Eugenia Choquesillo-Lazarte, Duane Castiñeiras, Alfonso Lezama, Luis Frontera, Antonio Niclós-Gutiérrez, Juan Molecules Article Reactions in water between the Cu(2)(µ-EGTA) chelate (EGTA = ethylene-bis(oxyethyleneimino)tetraacetate(4-) ion) and Hdap in molar ratios 1:1 and 1:2 yield only blue crystals of the ternary compound [Cu(4)(μ-EGTA)(2)(μ-H(N(3))dap)(2)(H(2)O)(2)]·7H(2)O (1), which has been studied via single-crystal X-ray diffraction and various physical methods (thermal stability, spectral and magnetic properties), as well as DFT theoretical calculations. In the crystal, uncoordinated water is disordered. The tetranuclear complex molecule also has some irrelevant disorder in an EGTA-ethylene moiety. In the complex molecule, both bridging organic molecules act as binucleating ligands. There are two distorted five- and two six-coordinated Cu(II) centers. Each half of EGTA acts as a tripodal tetradentate Cu(II) chelator, with a mer-NO2 + O(ether, distal) conformation. Hdap exhibits the tautomer H(N3)dap, with the dissociable H-atom on its less basic N-heterocyclic atom. These features favor the efficient cooperation between Cu-N7 or Cu-N9 bonds with appropriate O-EGTA atoms, as N6-H···O or N3-H···O interligand interactions, respectively. The bridging role of both organics determines the tetranuclear dimensionality of the complex. In this crystal, such molecules associate in zig-zag chains built by alternating π–π interactions between the five- or six-atom rings of Hdap ligands of adjacent molecules. DFT theoretical calculations (using two different theoretical models and characterized by the quantum theory of “atoms in molecules”) reveal the importance of these π–π interactions between Hdap ligands, as well as those corresponding to the referred hydrogen bonds in the contributed tetranuclear molecule. MDPI 2023-08-26 /pmc/articles/PMC10488833/ /pubmed/37687091 http://dx.doi.org/10.3390/molecules28176263 Text en © 2023 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
Mousavi, Homa
García-Rubiño, María Eugenia
Choquesillo-Lazarte, Duane
Castiñeiras, Alfonso
Lezama, Luis
Frontera, Antonio
Niclós-Gutiérrez, Juan
H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title_full H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title_fullStr H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title_full_unstemmed H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title_short H(N3)dap (Hdap = 2,6-Diaminopurine) Recognition by Cu(2)(EGTA): Structure, Physical Properties, and Density Functional Theory Calculations of [Cu(4)(μ-EGTA)(2)(μ-H(N3)dap)(2)(H(2)O)(2)]·7H(2)O
title_sort h(n3)dap (hdap = 2,6-diaminopurine) recognition by cu(2)(egta): structure, physical properties, and density functional theory calculations of [cu(4)(μ-egta)(2)(μ-h(n3)dap)(2)(h(2)o)(2)]·7h(2)o
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10488833/
https://www.ncbi.nlm.nih.gov/pubmed/37687091
http://dx.doi.org/10.3390/molecules28176263
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