Identification of bioactive molecule from Withania somnifera (Ashwagandha) as SARS-CoV-2 main protease inhibitor
Tripathi MK, Singh P, Sharma S, Singh TP, Ethayathulla AS, Kaur P
Journal of biomolecular structure & dynamics · 83 citations
Review labels
Neutral facts our review recorded about how this study was done. They describe method, never whether we like the result.
How it was studied
- Design
- In vitro/mechanistic study (classified by our AI screen)
- Studied in
- Cells or lab samples
- Main outcome
- No health outcome
Who paid for it
- Funding
- Funding not disclosed
Publication
- Published
- 2020-07-08 · J Biomol Struct Dyn · vol. 39 · issue 15 · pp. 5668–5681
- Publisher
- Taylor & Francis
- Cited
- 131 citations · more than 100% of similar papers · 26.2× the field average
- Impact
- Top 10% most cited in its field
- References
- 72 works
- Access
- Open access (repository copy)
- Research areas
- Phytochemicals and Medicinal Plants · Computational Drug Discovery Methods · SARS-CoV-2 and COVID-19 Research
- Keywords
- Withania somnifera, Docking (animal), Protease, Pharmacology, Traditional medicine, Chemistry, Polyproteins, Computational biology, Biology, Medicine, Biochemistry, Enzyme, Veterinary medicine
- MeSH
- humans, withania, plant extracts, protease inhibitors, antiviral agents, molecular dynamics simulation, molecular docking simulation, covid-19, sars-cov-2
6 authors
From IN
- Manish Kumar TripathiAll India Institute of Medical Sciences
- Pushpendra SinghNational Institute of High Security Animal Diseases
- Sujata SharmaAll India Institute of Medical Sciences
- Tej Pal SinghAll India Institute of Medical Sciences
- Abdul Samath EthayathullaAll India Institute of Medical Sciences
- Punit Kaur · correspondingAll India Institute of Medical Sciences
Abstract
SARS-CoV-2 is the causative agent of COVID-19 and has been declared as pandemic disease by World Health Organization. Lack of targeted therapeutics and vaccines for COVID-2019 have triggered the scientific community to develop new vaccines or drugs against this novel virus. Many synthetic compounds and antimalarial drugs are undergoing clinical trials. The traditional medical practitioners widely use Indian medicinal plant Withania somnifera (Ashwagandha) natural constituents, called withanolides for curing various diseases. The main protease (Mpro) of SARS-CoV-2 plays a vital role in disease propagation by processing the polyproteins which are required for its replication. Hence, it denotes a significant target for drug discovery. In the present study, we evaluate the potential of 40 natural chemical constituents of Ashwagandha to explore a possible inhibitor against main protease of SARS-CoV-2 by adopting the computational approach. The docking study revealed that four constituents of Ashwagandha; Withanoside II (-11.30 Kcal/mol), Withanoside IV (-11.02 Kcal/mol), Withanoside V (-8.96 Kcal/mol) and Sitoindoside IX (-8.37 Kcal/mol) exhibited the highest docking energy among the selected natural constituents. Further, MD simulation study of 100 ns predicts Withanoside V possess strong binding affinity and hydrogen-bonding interactions with the protein active site and indicates its stability in the active site. The binding free energy score also correlates with the highest score of -87.01 ± 5.01 Kcal/mol as compared to other selected compounds. In conclusion, our study suggests that Withanoside V in Ashwagandha may be serve as a potential inhibitor against Mpro of SARS-CoV-2 to combat COVID-19 and may have an antiviral effect on nCoV.Communicated by Ramaswamy H. Sarma.
Abstract via Europe PMC. Copyright remains with the authors or publisher.
Community trust
Loading…
How much do you trust this study's findings?
Comments
Sign in to rate, comment on or flag this study.Sign inSomething wrong here?
Flag this study if its information, labels or funding look wrong. An editor reviews every flag.
Sign in to rate, comment on or flag this study.Sign inEducational information about published research. Not medical advice, and not a recommendation to start or stop anything.