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Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones

The assertion made by Wu et al. that aromaticity may have considerable implications for molecular design motivated us to use nucleus-independent chemical shifts (NICS) as an aromaticity criterion to evaluate the antifungal activity of two series of indol-4-ones. A linear regression analysis of NICS...

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Autores principales: Zermeño-Macías, María de los Ángeles, González-Chávez, Marco Martín, Méndez, Francisco, Richaud, Arlette, González-Chávez, Rodolfo, Ojeda-Fuentes, Luis Enrique, Niño-Moreno, Perla del Carmen, Martínez, Roberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401487/
https://www.ncbi.nlm.nih.gov/pubmed/34443666
http://dx.doi.org/10.3390/molecules26165078
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author Zermeño-Macías, María de los Ángeles
González-Chávez, Marco Martín
Méndez, Francisco
Richaud, Arlette
González-Chávez, Rodolfo
Ojeda-Fuentes, Luis Enrique
Niño-Moreno, Perla del Carmen
Martínez, Roberto
author_facet Zermeño-Macías, María de los Ángeles
González-Chávez, Marco Martín
Méndez, Francisco
Richaud, Arlette
González-Chávez, Rodolfo
Ojeda-Fuentes, Luis Enrique
Niño-Moreno, Perla del Carmen
Martínez, Roberto
author_sort Zermeño-Macías, María de los Ángeles
collection PubMed
description The assertion made by Wu et al. that aromaticity may have considerable implications for molecular design motivated us to use nucleus-independent chemical shifts (NICS) as an aromaticity criterion to evaluate the antifungal activity of two series of indol-4-ones. A linear regression analysis of NICS and antifungal activity showed that both tested variables were significantly related (p < 0.05); when aromaticity increased, the antifungal activity decreased for series I and increased for series II. To verify the validity of the obtained equations, a new set of 44 benzofuran-4-ones was designed by replacing the nitrogen atom of the five-membered ring with oxygen in indol-4-ones. The NICS(0) and NICS(1) of benzofuran-4-ones were calculated and used to predict their biological activities using the previous equations. A set of 10 benzofuran-4-ones was synthesized and tested in eight human pathogenic fungi, showing the validity of the equations. The minimum inhibitory concentration (MIC) in yeasts was 31.25 µg·mL(–1) for Candida glabrata, Candida krusei and Candida guilliermondii with compounds 15-32, 15-15 and 15-1. The MIC for filamentous fungi was 1.95 µg·mL(–1) for Aspergillus niger for compounds 15-1, 15-33 and 15-34. The results obtained support the use of NICS in the molecular design of compounds with antifungal activity.
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spelling pubmed-84014872021-08-29 Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones Zermeño-Macías, María de los Ángeles González-Chávez, Marco Martín Méndez, Francisco Richaud, Arlette González-Chávez, Rodolfo Ojeda-Fuentes, Luis Enrique Niño-Moreno, Perla del Carmen Martínez, Roberto Molecules Article The assertion made by Wu et al. that aromaticity may have considerable implications for molecular design motivated us to use nucleus-independent chemical shifts (NICS) as an aromaticity criterion to evaluate the antifungal activity of two series of indol-4-ones. A linear regression analysis of NICS and antifungal activity showed that both tested variables were significantly related (p < 0.05); when aromaticity increased, the antifungal activity decreased for series I and increased for series II. To verify the validity of the obtained equations, a new set of 44 benzofuran-4-ones was designed by replacing the nitrogen atom of the five-membered ring with oxygen in indol-4-ones. The NICS(0) and NICS(1) of benzofuran-4-ones were calculated and used to predict their biological activities using the previous equations. A set of 10 benzofuran-4-ones was synthesized and tested in eight human pathogenic fungi, showing the validity of the equations. The minimum inhibitory concentration (MIC) in yeasts was 31.25 µg·mL(–1) for Candida glabrata, Candida krusei and Candida guilliermondii with compounds 15-32, 15-15 and 15-1. The MIC for filamentous fungi was 1.95 µg·mL(–1) for Aspergillus niger for compounds 15-1, 15-33 and 15-34. The results obtained support the use of NICS in the molecular design of compounds with antifungal activity. MDPI 2021-08-21 /pmc/articles/PMC8401487/ /pubmed/34443666 http://dx.doi.org/10.3390/molecules26165078 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
Zermeño-Macías, María de los Ángeles
González-Chávez, Marco Martín
Méndez, Francisco
Richaud, Arlette
González-Chávez, Rodolfo
Ojeda-Fuentes, Luis Enrique
Niño-Moreno, Perla del Carmen
Martínez, Roberto
Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title_full Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title_fullStr Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title_full_unstemmed Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title_short Nucleus-Independent Chemical Shift (NICS) as a Criterion for the Design of New Antifungal Benzofuranones
title_sort nucleus-independent chemical shift (nics) as a criterion for the design of new antifungal benzofuranones
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401487/
https://www.ncbi.nlm.nih.gov/pubmed/34443666
http://dx.doi.org/10.3390/molecules26165078
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