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Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking

In the present work, the succinic acid (SA), L-pyroglutamic acid (L-PGA), N-phenyl-thioacetamide (N-NPTA), 2-amino-5-chloropyridine hydrogen succinate (ACPS), epigallocatechine Gallate (EGCG) or KDH and, selenomethionine (SeM) compounds have been proposed as potential antiviral candidates to treatme...

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Detalles Bibliográficos
Autores principales: Sagaama, Abir, Brandan, Silvia Antonia, Ben Issa, Takoua, Issaoui, Noureddine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7409764/
https://www.ncbi.nlm.nih.gov/pubmed/32802981
http://dx.doi.org/10.1016/j.heliyon.2020.e04640
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author Sagaama, Abir
Brandan, Silvia Antonia
Ben Issa, Takoua
Issaoui, Noureddine
author_facet Sagaama, Abir
Brandan, Silvia Antonia
Ben Issa, Takoua
Issaoui, Noureddine
author_sort Sagaama, Abir
collection PubMed
description In the present work, the succinic acid (SA), L-pyroglutamic acid (L-PGA), N-phenyl-thioacetamide (N-NPTA), 2-amino-5-chloropyridine hydrogen succinate (ACPS), epigallocatechine Gallate (EGCG) or KDH and, selenomethionine (SeM) compounds have been proposed as potential antiviral candidates to treatment of COVID-19 based on B3LYP/6-311++G∗∗ calculations and molecular docking. Solvation energies, stabilization energies, topological properties have been evaluated as function of acceptors and donors groups present in their structures. ACPS presents the higher reactivity in solution possibly because has the higher nucleophilicity and elecrophilicity indexes while KDH evidence the higher solvation energy probably due to the higher quantity of donors and acceptors groups. NBO studies show that KDH is the most stable in solution. Mapped MEP surfaces have evidenced stronger nucleophilic and electrophilic sites in ACPS, in agreement with the three C=O and two N–H and O–H groups present in this species while KDH has only a C=O group but a total of 19 acceptors and donors groups. From the above studies for six species we can propose that the better potential antiviral candidate to treatment of COVID-19 is ACPS and then, KDH. For a better prediction of the antiviral and anti-inflammatory properties of the proposed compounds, molecular docking calculations were performed by using four structures of COVID-19. Docking results were discussed basing on binding affinities and the interaction types among ligands and different amino acid residues, indicating the powerful ability of KDH and then ACPS ligands on front of the novel coronavirus disease especially for the first and the fourth species (6LU7, 7BTF).
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spelling pubmed-74097642020-08-07 Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking Sagaama, Abir Brandan, Silvia Antonia Ben Issa, Takoua Issaoui, Noureddine Heliyon Article In the present work, the succinic acid (SA), L-pyroglutamic acid (L-PGA), N-phenyl-thioacetamide (N-NPTA), 2-amino-5-chloropyridine hydrogen succinate (ACPS), epigallocatechine Gallate (EGCG) or KDH and, selenomethionine (SeM) compounds have been proposed as potential antiviral candidates to treatment of COVID-19 based on B3LYP/6-311++G∗∗ calculations and molecular docking. Solvation energies, stabilization energies, topological properties have been evaluated as function of acceptors and donors groups present in their structures. ACPS presents the higher reactivity in solution possibly because has the higher nucleophilicity and elecrophilicity indexes while KDH evidence the higher solvation energy probably due to the higher quantity of donors and acceptors groups. NBO studies show that KDH is the most stable in solution. Mapped MEP surfaces have evidenced stronger nucleophilic and electrophilic sites in ACPS, in agreement with the three C=O and two N–H and O–H groups present in this species while KDH has only a C=O group but a total of 19 acceptors and donors groups. From the above studies for six species we can propose that the better potential antiviral candidate to treatment of COVID-19 is ACPS and then, KDH. For a better prediction of the antiviral and anti-inflammatory properties of the proposed compounds, molecular docking calculations were performed by using four structures of COVID-19. Docking results were discussed basing on binding affinities and the interaction types among ligands and different amino acid residues, indicating the powerful ability of KDH and then ACPS ligands on front of the novel coronavirus disease especially for the first and the fourth species (6LU7, 7BTF). Elsevier 2020-08-06 /pmc/articles/PMC7409764/ /pubmed/32802981 http://dx.doi.org/10.1016/j.heliyon.2020.e04640 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Sagaama, Abir
Brandan, Silvia Antonia
Ben Issa, Takoua
Issaoui, Noureddine
Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title_full Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title_fullStr Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title_full_unstemmed Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title_short Searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on DFT calculations and molecular docking
title_sort searching potential antiviral candidates for the treatment of the 2019 novel coronavirus based on dft calculations and molecular docking
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7409764/
https://www.ncbi.nlm.nih.gov/pubmed/32802981
http://dx.doi.org/10.1016/j.heliyon.2020.e04640
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