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Analysis of Group IV Viral SSHHPS Using In Vitro and In Silico Methods
Published on: December 21, 2019
Inhibition of SARS-CoV-2 main protease: a repurposing study that targets the dimer interface of the protein
Hanife Pekel1,2, Metehan Ilter3, Ozge Sensoy2,4
1Department of Pharmacy Services, Vocational School of Health Services, Istanbul Medipol University, Istanbul, Turkey.
Abstract:
Coronavirus disease-2019 (COVID-19) was firstly reported in Wuhan, China, towards the end of 2019, and emerged as a pandemic. The spread and lethality rates of the COVID-19 have ignited studies that focus on the development of therapeutics for either treatment or prophylaxis purposes. In parallel, drug repurposing studies have also come into prominence. Herein, we aimed at having a holistic understanding of conformational and dynamical changes induced by an experimentally characterized inhibitor on main protease (Mpro) which would enable the discovery of novel inhibitors. To this end, we performed molecular dynamics simulations using crystal structures of apo and α-ketoamide 13b-bound Mpro homodimer. Analysis of trajectories pertaining to apo Mpro revealed a new target site, which is located at the homodimer interface, next to the catalytic dyad. Thereafter, we performed ensemble-based virtual screening by exploiting the ZINC and DrugBank databases and identified three candidate molecules, namely eluxadoline, diosmin, and ZINC02948810 that could invoke local and global conformational rearrangements which were also elicited by α-ketoamide 13b on the catalytic dyad of Mpro. Furthermore, ZINC23881687 stably interacted with catalytically important residues Glu166 and Ser1 and the target site throughout the simulation. However, it gave positive binding energy, presumably, due to displaying higher flexibility that might dominate the entropic term, which is not included in the MM-PBSA method. Finally, ZINC20425029, whose mode of action was different, modulated dynamical properties of catalytically important residue, Ala285. As such, this study presents valuable findings that might be used in the development of novel therapeutics against Mpro.Communicated by Ramaswamy H. Sarma.
Insights
This study reveals a new target site on the SARS-CoV-2 main protease (Mpro) and identifies potential drug candidates like eluxadoline and diosmin for COVID-19 therapeutics.
Area of Science:
- Biochemistry
- Structural Biology
- Drug Discovery
Background:
- COVID-19 pandemic necessitates novel therapeutic strategies.
- Drug repurposing offers a promising avenue for rapid development.
- The SARS-CoV-2 main protease (Mpro) is a critical target for antiviral therapies.
Purpose of the Study:
- To understand conformational and dynamical changes in Mpro induced by an inhibitor.
- To identify novel inhibitors for Mpro through virtual screening.
- To explore potential drug repurposing candidates.
Main Methods:
- Molecular dynamics simulations of apo and inhibitor-bound Mpro.
- Analysis of protein trajectories to identify novel binding sites.
- Ensemble-based virtual screening using ZINC and DrugBank databases.
Main Results:
- A new target site was identified at the Mpro homodimer interface.
- Eluxadoline, diosmin, and ZINC02948810 were identified as potential Mpro inhibitors.
- ZINC23881687 showed stable interactions, while ZINC20425029 modulated catalytic residue dynamics.
Conclusions:
- The study provides insights into Mpro's conformational dynamics.
- Identified compounds and a novel target site can guide the development of new COVID-19 therapeutics.
- This research supports drug repurposing efforts against SARS-CoV-2.
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