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Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library

The Ebola virus and its close relative, the Marburg virus, both belong to the family Filoviridae and are highly hazardous and contagious viruses. With a mortality rate ranging from 23% to 90%, depending on the specific outbreak, the development of effective antiviral interventions is crucial for red...

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Autores principales: Alsaady, Isra M., Bajrai, Leena H., Alandijany, Thamir A., Gattan, Hattan S., El-Daly, Mai M., Altwaim, Sarah A., Alqawas, Rahaf T., Dwivedi, Vivek Dhar, Azhar, Esam I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10459822/
https://www.ncbi.nlm.nih.gov/pubmed/37632081
http://dx.doi.org/10.3390/v15081739
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author Alsaady, Isra M.
Bajrai, Leena H.
Alandijany, Thamir A.
Gattan, Hattan S.
El-Daly, Mai M.
Altwaim, Sarah A.
Alqawas, Rahaf T.
Dwivedi, Vivek Dhar
Azhar, Esam I.
author_facet Alsaady, Isra M.
Bajrai, Leena H.
Alandijany, Thamir A.
Gattan, Hattan S.
El-Daly, Mai M.
Altwaim, Sarah A.
Alqawas, Rahaf T.
Dwivedi, Vivek Dhar
Azhar, Esam I.
author_sort Alsaady, Isra M.
collection PubMed
description The Ebola virus and its close relative, the Marburg virus, both belong to the family Filoviridae and are highly hazardous and contagious viruses. With a mortality rate ranging from 23% to 90%, depending on the specific outbreak, the development of effective antiviral interventions is crucial for reducing fatalities and mitigating the impact of Marburg virus outbreaks. In this investigation, a virtual screening approach was employed to evaluate 2042 natural compounds for their potential interactions with the VP35 protein of the Marburg virus. Average and worst binding energies were calculated for all 20 poses, and compounds that exhibited binding energies <−6 kcal/mol in both criteria were selected for further analysis. Based on binding energies, only six compounds (Estradiol benzoate, INVEGA (paliperidone), Isosilybin, Protopanaxadiol, Permethrin, and Bufalin) were selected for subsequent investigations, focusing on interaction analysis. Among these selected compounds, Estradiol benzoate, INVEGA (paliperidone), and Isosilybin showed strong hydrogen bonds, while the others did not. In this study, the compounds Myricetin, Isosilybin, and Estradiol benzoate were subjected to a molecular dynamics (MD) simulation and free binding energy calculation using MM/GBSA analysis. The reference component Myricetin served as a control. Estradiol benzoate exhibited the most stable and consistent root-mean-square deviation (RMSD) values, whereas Isosilybin showed significant fluctuations in RMSD. The compound Estradiol benzoate exhibited the lowest ΔG binding free energy (−22.89 kcal/mol), surpassing the control compound’s binding energy (−9.29 kcal/mol). Overall, this investigation suggested that Estradiol benzoate possesses favorable binding free energies, indicating a potential inhibitory mechanism against the VP35 protein of the Marburg virus. The study proposes that these natural compounds could serve as a therapeutic option for preventing Marburg virus infection. However, experimental validation is required to further corroborate these findings.
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spelling pubmed-104598222023-08-27 Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library Alsaady, Isra M. Bajrai, Leena H. Alandijany, Thamir A. Gattan, Hattan S. El-Daly, Mai M. Altwaim, Sarah A. Alqawas, Rahaf T. Dwivedi, Vivek Dhar Azhar, Esam I. Viruses Article The Ebola virus and its close relative, the Marburg virus, both belong to the family Filoviridae and are highly hazardous and contagious viruses. With a mortality rate ranging from 23% to 90%, depending on the specific outbreak, the development of effective antiviral interventions is crucial for reducing fatalities and mitigating the impact of Marburg virus outbreaks. In this investigation, a virtual screening approach was employed to evaluate 2042 natural compounds for their potential interactions with the VP35 protein of the Marburg virus. Average and worst binding energies were calculated for all 20 poses, and compounds that exhibited binding energies <−6 kcal/mol in both criteria were selected for further analysis. Based on binding energies, only six compounds (Estradiol benzoate, INVEGA (paliperidone), Isosilybin, Protopanaxadiol, Permethrin, and Bufalin) were selected for subsequent investigations, focusing on interaction analysis. Among these selected compounds, Estradiol benzoate, INVEGA (paliperidone), and Isosilybin showed strong hydrogen bonds, while the others did not. In this study, the compounds Myricetin, Isosilybin, and Estradiol benzoate were subjected to a molecular dynamics (MD) simulation and free binding energy calculation using MM/GBSA analysis. The reference component Myricetin served as a control. Estradiol benzoate exhibited the most stable and consistent root-mean-square deviation (RMSD) values, whereas Isosilybin showed significant fluctuations in RMSD. The compound Estradiol benzoate exhibited the lowest ΔG binding free energy (−22.89 kcal/mol), surpassing the control compound’s binding energy (−9.29 kcal/mol). Overall, this investigation suggested that Estradiol benzoate possesses favorable binding free energies, indicating a potential inhibitory mechanism against the VP35 protein of the Marburg virus. The study proposes that these natural compounds could serve as a therapeutic option for preventing Marburg virus infection. However, experimental validation is required to further corroborate these findings. MDPI 2023-08-15 /pmc/articles/PMC10459822/ /pubmed/37632081 http://dx.doi.org/10.3390/v15081739 Text en © 2023 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
Alsaady, Isra M.
Bajrai, Leena H.
Alandijany, Thamir A.
Gattan, Hattan S.
El-Daly, Mai M.
Altwaim, Sarah A.
Alqawas, Rahaf T.
Dwivedi, Vivek Dhar
Azhar, Esam I.
Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title_full Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title_fullStr Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title_full_unstemmed Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title_short Cheminformatics Strategies Unlock Marburg Virus VP35 Inhibitors from Natural Compound Library
title_sort cheminformatics strategies unlock marburg virus vp35 inhibitors from natural compound library
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10459822/
https://www.ncbi.nlm.nih.gov/pubmed/37632081
http://dx.doi.org/10.3390/v15081739
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