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Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors

Acquired immunodeficiency syndrome is a public health problem worldwide caused by the Human immunodeficiency virus (HIV). Treatment with antiretroviral drugs is the best option for viral suppression, reducing morbidity and mortality. However, viral resistance in HIV-1 therapy has been reported. HIV-...

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Autores principales: de Oliveira Magalhães, Uiaran, de Souza, Alessandra Mendonça Teles, Albuquerque, Magaly Girão, de Brito, Monique Araújo, Bello, Murilo Lamim, Cabral, Lucio Mendes, Rodrigues, Carlos Rangel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2013
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Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3771852/
https://www.ncbi.nlm.nih.gov/pubmed/24039405
http://dx.doi.org/10.2147/DDDT.S47057
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author de Oliveira Magalhães, Uiaran
de Souza, Alessandra Mendonça Teles
Albuquerque, Magaly Girão
de Brito, Monique Araújo
Bello, Murilo Lamim
Cabral, Lucio Mendes
Rodrigues, Carlos Rangel
author_facet de Oliveira Magalhães, Uiaran
de Souza, Alessandra Mendonça Teles
Albuquerque, Magaly Girão
de Brito, Monique Araújo
Bello, Murilo Lamim
Cabral, Lucio Mendes
Rodrigues, Carlos Rangel
author_sort de Oliveira Magalhães, Uiaran
collection PubMed
description Acquired immunodeficiency syndrome is a public health problem worldwide caused by the Human immunodeficiency virus (HIV). Treatment with antiretroviral drugs is the best option for viral suppression, reducing morbidity and mortality. However, viral resistance in HIV-1 therapy has been reported. HIV-1 integrase (IN) is an essential enzyme for effective viral replication and an attractive target for the development of new inhibitors. In the study reported here, two- and three-dimensional quantitative structure–activity relationship (2D/3D-QSAR) studies, applying hologram quantitative structure–activity relationship (HQSAR) and comparative molecular field analysis (CoMFA) methods, respectively, were performed on a series of tricyclic phthalimide HIV-1 IN inhibitors. The best HQSAR model (q(2) = 0.802, r(2) = 0.972) was obtained using atoms, bonds, and connectivity as the fragment distinction, a fragment size of 2–5 atoms, hologram length of 61 bins, and six components. The best CoMFA model (q(2) = 0.748, r(2) = 0.974) was obtained with alignment of all atoms of the tricyclic phthalimide moiety (alignment II). The HQSAR contribution map identified that the carbonyl-hydroxy-aromatic nitrogen motif made a positive contribution to the activity of the compounds. Furthermore, CoMFA contour maps suggested that bulky groups in meta and para positions in the phenyl ring would increase the biological activity of this class. The conclusions of this work may lead to a better understanding of HIV-1 IN inhibition and contribute to the design of new and more potent derivatives.
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spelling pubmed-37718522013-09-13 Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors de Oliveira Magalhães, Uiaran de Souza, Alessandra Mendonça Teles Albuquerque, Magaly Girão de Brito, Monique Araújo Bello, Murilo Lamim Cabral, Lucio Mendes Rodrigues, Carlos Rangel Drug Des Devel Ther Original Research Acquired immunodeficiency syndrome is a public health problem worldwide caused by the Human immunodeficiency virus (HIV). Treatment with antiretroviral drugs is the best option for viral suppression, reducing morbidity and mortality. However, viral resistance in HIV-1 therapy has been reported. HIV-1 integrase (IN) is an essential enzyme for effective viral replication and an attractive target for the development of new inhibitors. In the study reported here, two- and three-dimensional quantitative structure–activity relationship (2D/3D-QSAR) studies, applying hologram quantitative structure–activity relationship (HQSAR) and comparative molecular field analysis (CoMFA) methods, respectively, were performed on a series of tricyclic phthalimide HIV-1 IN inhibitors. The best HQSAR model (q(2) = 0.802, r(2) = 0.972) was obtained using atoms, bonds, and connectivity as the fragment distinction, a fragment size of 2–5 atoms, hologram length of 61 bins, and six components. The best CoMFA model (q(2) = 0.748, r(2) = 0.974) was obtained with alignment of all atoms of the tricyclic phthalimide moiety (alignment II). The HQSAR contribution map identified that the carbonyl-hydroxy-aromatic nitrogen motif made a positive contribution to the activity of the compounds. Furthermore, CoMFA contour maps suggested that bulky groups in meta and para positions in the phenyl ring would increase the biological activity of this class. The conclusions of this work may lead to a better understanding of HIV-1 IN inhibition and contribute to the design of new and more potent derivatives. Dove Medical Press 2013-09-05 /pmc/articles/PMC3771852/ /pubmed/24039405 http://dx.doi.org/10.2147/DDDT.S47057 Text en © 2013 Magalhães et al. This work is published by Dove Medical Press Ltd, and licensed under Creative Commons Attribution – Non Commercial (unported, v3.0) License The full terms of the License are available at http://creativecommons.org/licenses/by-nc/3.0/. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Ltd, provided the work is properly attributed.
spellingShingle Original Research
de Oliveira Magalhães, Uiaran
de Souza, Alessandra Mendonça Teles
Albuquerque, Magaly Girão
de Brito, Monique Araújo
Bello, Murilo Lamim
Cabral, Lucio Mendes
Rodrigues, Carlos Rangel
Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title_full Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title_fullStr Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title_full_unstemmed Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title_short Hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide HIV-1 integrase inhibitors
title_sort hologram quantitative structure–activity relationship and comparative molecular field analysis studies within a series of tricyclic phthalimide hiv-1 integrase inhibitors
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3771852/
https://www.ncbi.nlm.nih.gov/pubmed/24039405
http://dx.doi.org/10.2147/DDDT.S47057
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