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Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies

The elucidation of the complexation of lapachol and its derivatives to Fe(2+) cation has been done using the density functional theory (DFT). This complexation has been limited to bidentate and tridentate to Fe(2+) cation. Geometry optimizations have been implemented in gas and solution phase (water...

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Autores principales: Pajoudoro, Djafarou Ngouh, Lissouck, Daniel, Ateba Amana, Baruch, Mfomo, Joseph Zobo, Abdallah, A. E. B., Toze, Alfred Aristide Flavien, Mama, Désiré Bikele
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7150675/
https://www.ncbi.nlm.nih.gov/pubmed/32318101
http://dx.doi.org/10.1155/2020/2103239
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author Pajoudoro, Djafarou Ngouh
Lissouck, Daniel
Ateba Amana, Baruch
Mfomo, Joseph Zobo
Abdallah, A. E. B.
Toze, Alfred Aristide Flavien
Mama, Désiré Bikele
author_facet Pajoudoro, Djafarou Ngouh
Lissouck, Daniel
Ateba Amana, Baruch
Mfomo, Joseph Zobo
Abdallah, A. E. B.
Toze, Alfred Aristide Flavien
Mama, Désiré Bikele
author_sort Pajoudoro, Djafarou Ngouh
collection PubMed
description The elucidation of the complexation of lapachol and its derivatives to Fe(2+) cation has been done using the density functional theory (DFT). This complexation has been limited to bidentate and tridentate to Fe(2+) cation. Geometry optimizations have been implemented in gas and solution phase (water, acetonitrile, chlorobenzene, benzene, and toluene) for ligands at B3LYP/6-311++G (d,p) level of theory using B3LYP/6-31+G(d,p) optimized data as starting point. But, the geometrical optimizations in solution phase of the 22 complexes analyzed of lapachol and its derivatives to Fe(2+) cation were restricted to acetonitrile and benzene. The complexation energy and the metal ion affinity (MIA) have also been calculated using the B3LYP method. The results obtained indicated a proportionality between the MIA values and the retained charge on Fe(2+) cation for k(2)-(O(1),O(2)) modes. But, an inverse proportionality has been yielded between these two parameters for k(3)-(O(2), C=C) tridentate modes. For k(3)-(O(3),C=C) tridentate mode coordination, the higher stability has been obtained. In this latter tridentate coordination in gas phase, the topological analysis of complexes exhibits the fact that the electron density is concentrated between the O(3) oxygen atom of the ligand attached to Fe(2+) and this metal cation. Moreover, the hydrogen bond strength calculated for isolated ligands (situated between 23.92 and 30.15 kJ/mol) is in the range of normal HBs. Collectively, all the complexation processes have shown to be highly exothermic. Our results have also shown that the electron extraction from Fe(2+)...La(i) complexes is more difficult compared to that from free ligands.
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spelling pubmed-71506752020-04-21 Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies Pajoudoro, Djafarou Ngouh Lissouck, Daniel Ateba Amana, Baruch Mfomo, Joseph Zobo Abdallah, A. E. B. Toze, Alfred Aristide Flavien Mama, Désiré Bikele Bioinorg Chem Appl Research Article The elucidation of the complexation of lapachol and its derivatives to Fe(2+) cation has been done using the density functional theory (DFT). This complexation has been limited to bidentate and tridentate to Fe(2+) cation. Geometry optimizations have been implemented in gas and solution phase (water, acetonitrile, chlorobenzene, benzene, and toluene) for ligands at B3LYP/6-311++G (d,p) level of theory using B3LYP/6-31+G(d,p) optimized data as starting point. But, the geometrical optimizations in solution phase of the 22 complexes analyzed of lapachol and its derivatives to Fe(2+) cation were restricted to acetonitrile and benzene. The complexation energy and the metal ion affinity (MIA) have also been calculated using the B3LYP method. The results obtained indicated a proportionality between the MIA values and the retained charge on Fe(2+) cation for k(2)-(O(1),O(2)) modes. But, an inverse proportionality has been yielded between these two parameters for k(3)-(O(2), C=C) tridentate modes. For k(3)-(O(3),C=C) tridentate mode coordination, the higher stability has been obtained. In this latter tridentate coordination in gas phase, the topological analysis of complexes exhibits the fact that the electron density is concentrated between the O(3) oxygen atom of the ligand attached to Fe(2+) and this metal cation. Moreover, the hydrogen bond strength calculated for isolated ligands (situated between 23.92 and 30.15 kJ/mol) is in the range of normal HBs. Collectively, all the complexation processes have shown to be highly exothermic. Our results have also shown that the electron extraction from Fe(2+)...La(i) complexes is more difficult compared to that from free ligands. Hindawi 2020-03-31 /pmc/articles/PMC7150675/ /pubmed/32318101 http://dx.doi.org/10.1155/2020/2103239 Text en Copyright © 2020 Djafarou Ngouh Pajoudoro et al. http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Pajoudoro, Djafarou Ngouh
Lissouck, Daniel
Ateba Amana, Baruch
Mfomo, Joseph Zobo
Abdallah, A. E. B.
Toze, Alfred Aristide Flavien
Mama, Désiré Bikele
Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title_full Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title_fullStr Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title_full_unstemmed Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title_short Antioxidant Properties of Lapachol and Its Derivatives and Their Ability to Chelate Iron (II) Cation: DFT and QTAIM Studies
title_sort antioxidant properties of lapachol and its derivatives and their ability to chelate iron (ii) cation: dft and qtaim studies
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7150675/
https://www.ncbi.nlm.nih.gov/pubmed/32318101
http://dx.doi.org/10.1155/2020/2103239
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