DSpace Repository

Mechanistic Inhibition of Monkeypox and Marburg Virus Infection by O-Rhamnosides and Kaempferol-O-Rhamnosides Derivatives

Show simple item record

dc.contributor.author Mashud, Md Abdullah Al
dc.contributor.author Kumer, Ajoy
dc.contributor.author Mukerjee, Nobendu
dc.contributor.author Chandro, Akhel
dc.contributor.author Maitra, Swastika
dc.contributor.author Chakma, Unesco
dc.contributor.author Dey, Abhijit
dc.contributor.author Akash, Shopnil
dc.contributor.author Alexiou, Athanasiosis
dc.contributor.author Khan, Azmat Ali
dc.contributor.author Alanazi, Amer M
dc.contributor.author Ghosh, Arabinda
dc.contributor.author Chen, Kow-Tong
dc.contributor.author Sharma, Rohit
dc.date.accessioned 2024-07-04T03:59:07Z
dc.date.available 2024-07-04T03:59:07Z
dc.date.issued 2023-05-24
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/12833
dc.description.abstract "The increasing incidence of Monkeypox virus (Mpox) and Marburg virus (MARV) infections worldwide presents a significant challenge to global health, as limited treatment options are currently available. This study investigates the potential of several O-rhamnosides and Kaempferol-O-rhamnosides as Mpox and MARV inhibitors using molecular modeling methods, including ADMET, molecular docking, and molecular dynamics/MD simulation. The effectiveness of these compounds against the viruses was assessed using the Prediction of Activity Spectra for Substances (PASS) prediction. The study's primary focus is molecular docking prediction, which demonstrated that ligands (L07, L08, and L09) bind to Mpox (PDB ID: 4QWO) and MARV (PDB ID: 4OR8) with binding affinities ranging from -8.00 kcal/mol to -9.5 kcal/mol. HOMO-LUMO based quantum calculations were employed to determine the HOMO-LUMO gap of frontier molecular orbitals (FMOs) and to estimate chemical potential, electronegativity, hardness, and softness. Drug similarity and ADMET prediction assessments of pharmacokinetic properties revealed that the compounds were likely non-carcinogenic, non-hepatotoxic, and rapidly soluble. Molecular dynamic (MD) modeling was used to identify the most favorable docked complexes involving bioactive chemicals. MD simulations indicate that varying types of kaempferol-O-rhamnoside are necessary for successful docking validation and maintaining the stability of the docked complex. These findings could facilitate the discovery of novel therapeutic agents for treating illnesses caused by the Mpox and MARV viruses." en_US
dc.language.iso en_US en_US
dc.publisher Frontier Scientific Publishing en_US
dc.subject Marburg virus en_US
dc.subject Monkeypox virus en_US
dc.subject Drug development en_US
dc.subject Molecular en_US
dc.title Mechanistic Inhibition of Monkeypox and Marburg Virus Infection by O-Rhamnosides and Kaempferol-O-Rhamnosides Derivatives en_US
dc.title.alternative A New-Fangled Computational Approach en_US
dc.type Article en_US


Files in this item

This item appears in the following Collection(s)

Show simple item record

Search DSpace


Browse

My Account

Statistics