Cargando…

Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease

The monkeypox virus (MPXV) is an enveloped, double-stranded DNA virus belonging to the genus Orthopox viruses. In recent years, the virus has spread to countries where it was previously unknown, turning it into a worldwide emergency for public health. This study employs a structural-based drug desig...

Descripción completa

Detalles Bibliográficos
Autores principales: Imran, Mohd, Abida, Alotaibi, Nawaf M., Thabet, Hamdy Khamees, Alruwaili, Jamal Alhameedi, Eltaib, Lina, Alshehri, Ahmed, Alsaiari, Ahad Amer, Kamal, Mehnaz, Alshammari, Abdulmajeed Mohammed Abdullah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377189/
https://www.ncbi.nlm.nih.gov/pubmed/37509664
http://dx.doi.org/10.3390/biomedicines11072025
_version_ 1785079456113623040
author Imran, Mohd
Abida
Alotaibi, Nawaf M.
Thabet, Hamdy Khamees
Alruwaili, Jamal Alhameedi
Eltaib, Lina
Alshehri, Ahmed
Alsaiari, Ahad Amer
Kamal, Mehnaz
Alshammari, Abdulmajeed Mohammed Abdullah
author_facet Imran, Mohd
Abida
Alotaibi, Nawaf M.
Thabet, Hamdy Khamees
Alruwaili, Jamal Alhameedi
Eltaib, Lina
Alshehri, Ahmed
Alsaiari, Ahad Amer
Kamal, Mehnaz
Alshammari, Abdulmajeed Mohammed Abdullah
author_sort Imran, Mohd
collection PubMed
description The monkeypox virus (MPXV) is an enveloped, double-stranded DNA virus belonging to the genus Orthopox viruses. In recent years, the virus has spread to countries where it was previously unknown, turning it into a worldwide emergency for public health. This study employs a structural-based drug design approach to identify potential inhibitors for the core cysteine proteinase of MPXV. During the simulations, the study identified two potential inhibitors, compound CHEMBL32926 and compound CHEMBL4861364, demonstrating strong binding affinities and drug-like properties. Their docking scores with the target protein were −10.7 and −10.9 kcal/mol, respectively. This study used ensemble-based protein–ligand docking to account for the binding site conformation variability. By examining how the identified inhibitors interact with the protein, this research sheds light on the workings of the inhibitors’ mechanisms of action. Molecular dynamic simulations of protein–ligand complexes showed fluctuations from the initial docked pose, but they confirmed their binding throughout the simulation. The MMGBSA binding free energy calculations for CHEMBL32926 showed a binding free energy range of (−9.25 to −9.65) kcal/mol, while CHEMBL4861364 exhibited a range of (−41.66 to −31.47) kcal/mol. Later, analogues were searched for these compounds with 70% similarity criteria, and their IC(50) was predicted using pre-trained machine learning models. This resulted in identifying two similar compounds for each hit with comparable binding affinity for cysteine proteinase. This study’s structure-based drug design approach provides a promising strategy for identifying new drugs for treating MPXV infections.
format Online
Article
Text
id pubmed-10377189
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-103771892023-07-29 Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease Imran, Mohd Abida Alotaibi, Nawaf M. Thabet, Hamdy Khamees Alruwaili, Jamal Alhameedi Eltaib, Lina Alshehri, Ahmed Alsaiari, Ahad Amer Kamal, Mehnaz Alshammari, Abdulmajeed Mohammed Abdullah Biomedicines Article The monkeypox virus (MPXV) is an enveloped, double-stranded DNA virus belonging to the genus Orthopox viruses. In recent years, the virus has spread to countries where it was previously unknown, turning it into a worldwide emergency for public health. This study employs a structural-based drug design approach to identify potential inhibitors for the core cysteine proteinase of MPXV. During the simulations, the study identified two potential inhibitors, compound CHEMBL32926 and compound CHEMBL4861364, demonstrating strong binding affinities and drug-like properties. Their docking scores with the target protein were −10.7 and −10.9 kcal/mol, respectively. This study used ensemble-based protein–ligand docking to account for the binding site conformation variability. By examining how the identified inhibitors interact with the protein, this research sheds light on the workings of the inhibitors’ mechanisms of action. Molecular dynamic simulations of protein–ligand complexes showed fluctuations from the initial docked pose, but they confirmed their binding throughout the simulation. The MMGBSA binding free energy calculations for CHEMBL32926 showed a binding free energy range of (−9.25 to −9.65) kcal/mol, while CHEMBL4861364 exhibited a range of (−41.66 to −31.47) kcal/mol. Later, analogues were searched for these compounds with 70% similarity criteria, and their IC(50) was predicted using pre-trained machine learning models. This resulted in identifying two similar compounds for each hit with comparable binding affinity for cysteine proteinase. This study’s structure-based drug design approach provides a promising strategy for identifying new drugs for treating MPXV infections. MDPI 2023-07-18 /pmc/articles/PMC10377189/ /pubmed/37509664 http://dx.doi.org/10.3390/biomedicines11072025 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
Imran, Mohd
Abida
Alotaibi, Nawaf M.
Thabet, Hamdy Khamees
Alruwaili, Jamal Alhameedi
Eltaib, Lina
Alshehri, Ahmed
Alsaiari, Ahad Amer
Kamal, Mehnaz
Alshammari, Abdulmajeed Mohammed Abdullah
Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title_full Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title_fullStr Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title_full_unstemmed Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title_short Repurposing Anti-Dengue Compounds against Monkeypox Virus Targeting Core Cysteine Protease
title_sort repurposing anti-dengue compounds against monkeypox virus targeting core cysteine protease
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10377189/
https://www.ncbi.nlm.nih.gov/pubmed/37509664
http://dx.doi.org/10.3390/biomedicines11072025
work_keys_str_mv AT imranmohd repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT abida repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT alotaibinawafm repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT thabethamdykhamees repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT alruwailijamalalhameedi repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT eltaiblina repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT alshehriahmed repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT alsaiariahadamer repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT kamalmehnaz repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease
AT alshammariabdulmajeedmohammedabdullah repurposingantidenguecompoundsagainstmonkeypoxvirustargetingcorecysteineprotease