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Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †

Dapsone (DDS) is an antibacterial drug with well-known antioxidant properties. However, the antioxidant behavior of its derivatives has not been well explored. In the present work, the antioxidant activity of 10 dapsone derivatives 4-substituted was determined by an evaluation in two in vitro models...

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Autores principales: Guzmán-Ávila, Ricardo, Avelar, Mayra, Márquez, Edgar A., Rivera-Leyva, Julio C., Mora, José R., Flores-Morales, Virginia, Rivera-Islas, Jesús
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510498/
https://www.ncbi.nlm.nih.gov/pubmed/34641292
http://dx.doi.org/10.3390/molecules26195747
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author Guzmán-Ávila, Ricardo
Avelar, Mayra
Márquez, Edgar A.
Rivera-Leyva, Julio C.
Mora, José R.
Flores-Morales, Virginia
Rivera-Islas, Jesús
author_facet Guzmán-Ávila, Ricardo
Avelar, Mayra
Márquez, Edgar A.
Rivera-Leyva, Julio C.
Mora, José R.
Flores-Morales, Virginia
Rivera-Islas, Jesús
author_sort Guzmán-Ávila, Ricardo
collection PubMed
description Dapsone (DDS) is an antibacterial drug with well-known antioxidant properties. However, the antioxidant behavior of its derivatives has not been well explored. In the present work, the antioxidant activity of 10 dapsone derivatives 4-substituted was determined by an evaluation in two in vitro models (DPPH radical scavenging assay and ferric reducing antioxidant power). These imine derivatives 1–10 were obtained through condensation between DDS and the corresponding aromatic aldehydes 4-substuited. Three derivatives presented better results than DDS in the determination of DPPH (2, 9, and 10). Likewise, we have three compounds with better reducing activity than dapsone (4, 9, and 10). In order to be more insight, the redox process, a conceptual DFT analysis was carried out. Molecular descriptors such as electronic distribution, the total charge accepting/donating capacity (I/A), and the partial charge accepting/donating capacity (ω(+)/ω(−)) were calculated to analyze the relative donor-acceptor capacity through employing a donor acceptor map (DAM). The DFT calculation allowed us to establish a relationship between GAP(HOMO-LUMO) and DAM with the observed antioxidant effects. According to the results, we concluded that compounds 2 and 3 have the lowest R(a) values, representing a good antioxidant behavior observed experimentally in DPPH radical capturing. On the other hand, derivatives 4, 9, and 10 display the best reducing capacity activity with the highest ω(−) and R(d) values. Consequently, we propose these compounds as the best antireductants in our DDS imine derivative series.
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spelling pubmed-85104982021-10-13 Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives † Guzmán-Ávila, Ricardo Avelar, Mayra Márquez, Edgar A. Rivera-Leyva, Julio C. Mora, José R. Flores-Morales, Virginia Rivera-Islas, Jesús Molecules Article Dapsone (DDS) is an antibacterial drug with well-known antioxidant properties. However, the antioxidant behavior of its derivatives has not been well explored. In the present work, the antioxidant activity of 10 dapsone derivatives 4-substituted was determined by an evaluation in two in vitro models (DPPH radical scavenging assay and ferric reducing antioxidant power). These imine derivatives 1–10 were obtained through condensation between DDS and the corresponding aromatic aldehydes 4-substuited. Three derivatives presented better results than DDS in the determination of DPPH (2, 9, and 10). Likewise, we have three compounds with better reducing activity than dapsone (4, 9, and 10). In order to be more insight, the redox process, a conceptual DFT analysis was carried out. Molecular descriptors such as electronic distribution, the total charge accepting/donating capacity (I/A), and the partial charge accepting/donating capacity (ω(+)/ω(−)) were calculated to analyze the relative donor-acceptor capacity through employing a donor acceptor map (DAM). The DFT calculation allowed us to establish a relationship between GAP(HOMO-LUMO) and DAM with the observed antioxidant effects. According to the results, we concluded that compounds 2 and 3 have the lowest R(a) values, representing a good antioxidant behavior observed experimentally in DPPH radical capturing. On the other hand, derivatives 4, 9, and 10 display the best reducing capacity activity with the highest ω(−) and R(d) values. Consequently, we propose these compounds as the best antireductants in our DDS imine derivative series. MDPI 2021-09-22 /pmc/articles/PMC8510498/ /pubmed/34641292 http://dx.doi.org/10.3390/molecules26195747 Text en © 2021 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
Guzmán-Ávila, Ricardo
Avelar, Mayra
Márquez, Edgar A.
Rivera-Leyva, Julio C.
Mora, José R.
Flores-Morales, Virginia
Rivera-Islas, Jesús
Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title_full Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title_fullStr Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title_full_unstemmed Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title_short Synthesis, In Vitro, and In Silico Analysis of the Antioxidative Activity of Dapsone Imine Derivatives †
title_sort synthesis, in vitro, and in silico analysis of the antioxidative activity of dapsone imine derivatives †
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510498/
https://www.ncbi.nlm.nih.gov/pubmed/34641292
http://dx.doi.org/10.3390/molecules26195747
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