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Potential therapeutic use of corticosteroids as SARS CoV-2 main protease inhibitors: a computational study
Rajesh Ghosh1, Ayon Chakraborty1, Ashis Biswas1
1School of Basic Sciences, Indian Institute of Technology Bhubaneswar, Bhubaneswar, India.
Abstract:
The outbreak of COVID-19, caused by severe acute respiratory syndrome coronavirus 2 (SARS CoV-2), represents a pandemic threat to global public health. To date, ∼530,000 people died of this disease worldwide. Presently, researchers/clinicians are adopting the drug repurposing strategy to combat this disease. It has also been observed that some repurposed anti-viral drugs may serve as potent inhibitors of SARS CoV-2 Mpro, a key component of viral replication. Apart from these anti-viral drugs, recently dexamethasone (an important corticosteroid) is effectively used to treat COVID-19 patients. However, the mechanism behind the mode of its action is not so clear. Additionally, the effect of other well-known corticosteroids to control this disease by inhibiting the proteolytic activity of Mpro is ambiguous. In this study, we have adopted computational approaches to understand these aspects. Six well-known corticosteroids (cortisone, hydrocortisone, prednisolone, methylprednisolone, betamethasone and dexamethasone) and two repurposed drugs (darunavir and lopinavir) against COVID-19 were subjected for molecular docking studies. Two of them (betamethasone and dexamethasone) were selected by comparing their binding affinities with selected repurposed drugs toward Mpro. Betamethasone and dexamethasone interacted with both the catalytic residues of Mpro (His41 and Cys145). Molecular dynamics studies further revealed that these two Mpro-corticosteroid complexes are more stable, experience less conformational fluctuations and more compact than Mpro-darunavir/lopinavir complexes. These findings were additionally validated by MM-GBSA analysis. This study provides corroboration for execution of anti-COVID-19 activity of dexamethasone. Our study also emphasizes on the use of another important corticosteroid (betamethasone) as potential therapeutic agent for COVID-19 treatment.
Insights
Betamethasone and dexamethasone show potential as COVID-19 treatments by inhibiting the SARS-CoV-2 Mpro enzyme. Computational studies confirm their stability and effectiveness, suggesting new therapeutic avenues for COVID-19 patients.
Area of Science:
- Biochemistry
- Computational Biology
- Pharmacology
Background:
- COVID-19, caused by SARS-CoV-2, poses a global health threat.
- Drug repurposing and corticosteroids like dexamethasone are explored for treatment.
- The mechanism of corticosteroid action against SARS-CoV-2 Mpro is unclear.
Purpose of the Study:
- To investigate the potential of corticosteroids in inhibiting SARS-CoV-2 Mpro.
- To elucidate the mechanism of action for corticosteroids against viral replication.
- To identify effective corticosteroids for COVID-19 treatment using computational methods.
Main Methods:
- Molecular docking studies of six corticosteroids and two repurposed antiviral drugs against SARS-CoV-2 Mpro.
- Comparison of binding affinities and interactions with catalytic residues (His41 and Cys145).
- Molecular dynamics and MM-GBSA analyses to assess complex stability and conformational dynamics.
Main Results:
- Betamethasone and dexamethasone exhibited strong binding affinities to SARS-CoV-2 Mpro.
- These corticosteroids interacted with key catalytic residues, inhibiting enzyme activity.
- Betamethasone and dexamethasone complexes showed enhanced stability and compactness compared to antiviral drug complexes.
Conclusions:
- Dexamethasone's anti-COVID-19 activity is computationally supported.
- Betamethasone emerges as a promising corticosteroid for COVID-19 therapeutic development.
- Computational approaches are valuable for identifying novel therapeutic strategies against SARS-CoV-2.
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