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The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study

A potent plant-derived HIV-1 inhibitor, 3,5-dicaffeoylquinic acid (diCQA), has been shown to undergo isomerisation upon UV exposure where the naturally occurring 3(trans),5(trans)-diCQA isomer gives rise to the 3(cis),5(trans)-diCQA, 3(trans),5(cis)-diCQA, and 3(cis),5(cis)-diCQA isomers. In this st...

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Autores principales: Makola, Mpho M., Dubery, Ian A., Koorsen, Gerrit, Steenkamp, Paul A., Kabanda, Mwadham M., du Preez, Louis L., Madala, Ntakadzeni E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5088326/
https://www.ncbi.nlm.nih.gov/pubmed/27829863
http://dx.doi.org/10.1155/2016/4138263
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author Makola, Mpho M.
Dubery, Ian A.
Koorsen, Gerrit
Steenkamp, Paul A.
Kabanda, Mwadham M.
du Preez, Louis L.
Madala, Ntakadzeni E.
author_facet Makola, Mpho M.
Dubery, Ian A.
Koorsen, Gerrit
Steenkamp, Paul A.
Kabanda, Mwadham M.
du Preez, Louis L.
Madala, Ntakadzeni E.
author_sort Makola, Mpho M.
collection PubMed
description A potent plant-derived HIV-1 inhibitor, 3,5-dicaffeoylquinic acid (diCQA), has been shown to undergo isomerisation upon UV exposure where the naturally occurring 3(trans),5(trans)-diCQA isomer gives rise to the 3(cis),5(trans)-diCQA, 3(trans),5(cis)-diCQA, and 3(cis),5(cis)-diCQA isomers. In this study, inhibition of HIV-1 INT by UV-induced isomers was investigated using molecular docking methods. Here, density functional theory (DFT) models were used for geometry optimization of the 3,5-diCQA isomers. The YASARA and Autodock VINA software packages were then used to determine the binding interactions between the HIV-1 INT catalytic domain and the 3,5-diCQA isomers and the Discovery Studio suite was used to visualise the interactions between the isomers and the protein. The geometrical isomers of 3,5-diCQA were all found to bind to the catalytic core domain of the INT enzyme. Moreover, the cis geometrical isomers were found to interact with the metal cofactor of HIV-1INT, a phenomenon which has been linked to antiviral potency. Furthermore, the 3(trans),5(cis)-diCQA isomer was also found to interact with both LYS156 and LYS159 which are important residues for viral DNA integration. The differences in binding modes of these naturally coexisting isomers may allow wider synergistic activity which may be beneficial in comparison to the activities of each individual isomer.
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spelling pubmed-50883262016-11-09 The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study Makola, Mpho M. Dubery, Ian A. Koorsen, Gerrit Steenkamp, Paul A. Kabanda, Mwadham M. du Preez, Louis L. Madala, Ntakadzeni E. Evid Based Complement Alternat Med Research Article A potent plant-derived HIV-1 inhibitor, 3,5-dicaffeoylquinic acid (diCQA), has been shown to undergo isomerisation upon UV exposure where the naturally occurring 3(trans),5(trans)-diCQA isomer gives rise to the 3(cis),5(trans)-diCQA, 3(trans),5(cis)-diCQA, and 3(cis),5(cis)-diCQA isomers. In this study, inhibition of HIV-1 INT by UV-induced isomers was investigated using molecular docking methods. Here, density functional theory (DFT) models were used for geometry optimization of the 3,5-diCQA isomers. The YASARA and Autodock VINA software packages were then used to determine the binding interactions between the HIV-1 INT catalytic domain and the 3,5-diCQA isomers and the Discovery Studio suite was used to visualise the interactions between the isomers and the protein. The geometrical isomers of 3,5-diCQA were all found to bind to the catalytic core domain of the INT enzyme. Moreover, the cis geometrical isomers were found to interact with the metal cofactor of HIV-1INT, a phenomenon which has been linked to antiviral potency. Furthermore, the 3(trans),5(cis)-diCQA isomer was also found to interact with both LYS156 and LYS159 which are important residues for viral DNA integration. The differences in binding modes of these naturally coexisting isomers may allow wider synergistic activity which may be beneficial in comparison to the activities of each individual isomer. Hindawi Publishing Corporation 2016 2016-10-18 /pmc/articles/PMC5088326/ /pubmed/27829863 http://dx.doi.org/10.1155/2016/4138263 Text en Copyright © 2016 Mpho M. Makola et al. https://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
Makola, Mpho M.
Dubery, Ian A.
Koorsen, Gerrit
Steenkamp, Paul A.
Kabanda, Mwadham M.
du Preez, Louis L.
Madala, Ntakadzeni E.
The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title_full The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title_fullStr The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title_full_unstemmed The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title_short The Effect of Geometrical Isomerism of 3,5-Dicaffeoylquinic Acid on Its Binding Affinity to HIV-Integrase Enzyme: A Molecular Docking Study
title_sort effect of geometrical isomerism of 3,5-dicaffeoylquinic acid on its binding affinity to hiv-integrase enzyme: a molecular docking study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5088326/
https://www.ncbi.nlm.nih.gov/pubmed/27829863
http://dx.doi.org/10.1155/2016/4138263
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