Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

In-silico approaches for identification of compounds inhibiting SARS-CoV-2 3CL protease

View through CrossRef
The world has witnessed of many pandemic waves of SARS-CoV-2. However, the incidence of SARS-CoV-2 infection has now declined but the novel variant and responsible cases has been observed globally. Most of the world population has received the vaccinations, but the immune response against COVID-19 is not long-lasting, which may cause new outbreaks. A highly efficient pharmaceutical molecule is desperately needed in these circumstances. In the present study, a potent natural compound that could inhibit the 3CL protease protein of SARS-CoV-2 was found with computationally intensive search. This research approach is based on physics-based principles and a machine-learning approach. Deep learning design was applied to the library of natural compounds to rank the potential candidates. This procedure screened 32,484 compounds, and the top five hits based on estimated pIC50 were selected for molecular docking and modeling. This work identified two hit compounds, CMP4 and CMP2, which exhibited strong interaction with the 3CL protease using molecular docking and simulation. These two compounds demonstrated potential interaction with the catalytic residues His41 and Cys154 of the 3CL protease. Their calculated binding free energies to MMGBSA were compared to those of the native 3CL protease inhibitor. Using steered molecular dynamics, the dissociation strength of these complexes was sequentially determined. In conclusion, CMP4 demonstrated strong comparative performance with native inhibitors and was identified as a promising hit candidate. This compound can be applied in-vitro experiment for the validation of its inhibitory activity. Additionally, these methods can be used to identify new binding sites on the enzyme and to design new compounds that target these sites.
Title: In-silico approaches for identification of compounds inhibiting SARS-CoV-2 3CL protease
Description:
The world has witnessed of many pandemic waves of SARS-CoV-2.
However, the incidence of SARS-CoV-2 infection has now declined but the novel variant and responsible cases has been observed globally.
Most of the world population has received the vaccinations, but the immune response against COVID-19 is not long-lasting, which may cause new outbreaks.
A highly efficient pharmaceutical molecule is desperately needed in these circumstances.
In the present study, a potent natural compound that could inhibit the 3CL protease protein of SARS-CoV-2 was found with computationally intensive search.
This research approach is based on physics-based principles and a machine-learning approach.
Deep learning design was applied to the library of natural compounds to rank the potential candidates.
This procedure screened 32,484 compounds, and the top five hits based on estimated pIC50 were selected for molecular docking and modeling.
This work identified two hit compounds, CMP4 and CMP2, which exhibited strong interaction with the 3CL protease using molecular docking and simulation.
These two compounds demonstrated potential interaction with the catalytic residues His41 and Cys154 of the 3CL protease.
Their calculated binding free energies to MMGBSA were compared to those of the native 3CL protease inhibitor.
Using steered molecular dynamics, the dissociation strength of these complexes was sequentially determined.
In conclusion, CMP4 demonstrated strong comparative performance with native inhibitors and was identified as a promising hit candidate.
This compound can be applied in-vitro experiment for the validation of its inhibitory activity.
Additionally, these methods can be used to identify new binding sites on the enzyme and to design new compounds that target these sites.

Related Results

The Potential of Medicinal Plants and Bioactive Compounds in the Fight Against COVID-19
The Potential of Medicinal Plants and Bioactive Compounds in the Fight Against COVID-19
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), a novel coronavirus , is causing a serious worldwide COVID-19 pandemic. The emergence of strains with rapid spread and...
Cellex qCoV Protocol v2
Cellex qCoV Protocol v2
Cellex’s qCOV assay is a viral enzyme activity assay, which detects the activity of coronaviral protease 3CL (chymotrypsin-like protease) in 15 minutes with sensitivity equivalent ...
The Hidden Problem of Cross-Reactivity: Challenges in HIV Testing During the COVID-19 Era: A Systematic Review
The Hidden Problem of Cross-Reactivity: Challenges in HIV Testing During the COVID-19 Era: A Systematic Review
Abstract Introduction Human immunodeficiency virus (HIV) and Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV2) surface glycoproteins, including shared epitope motifs, sho...
Development of a fluorescence based, high-throughput SARS-CoV-2 3CL pro reporter assay
Development of a fluorescence based, high-throughput SARS-CoV-2 3CL pro reporter assay
ABSTRACT In late 2019 a human coronavirus, now known as SARS-CoV-2, emerged, likely from a zoonotic reservoir. This virus causes COVID-19 disease...
Mutations in SARS-CoV
Mutations in SARS-CoV
The coronavirus family is named for the large spike protein molecules found on the pathogen exterior, which give the virus a crown-like appearance, the coronavirus genome is the bi...
Coronavirus infections in monocytes and macrophages
Coronavirus infections in monocytes and macrophages
Severe cases of SARS-CoV-2, the causative agent of COVID-19, are often accompanied by dysregulated immune responses. Monocytes and Macrophages, which are part of the innate immune ...

Back to Top