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Updated: Sep 1, 2025

Kinase Inhibitor Screening In Self-assembled Human Protein Microarrays
Published on: October 23, 2019
Molecular docking and dynamics based approach for the identification of kinase inhibitors targeting PI3Kα against
Debojyoti Halder1, Subham Das1, Aiswarya R1
1Department of Pharmaceutical Chemistry, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education Manipal Karnataka-576104 India jeya.prakasham@manipal.edu +919742351531.
Abstract:
Non-small cell lung cancer (NSCLC) is an obscure disease whose incidence is increasing worldwide day by day, and PI3Kα is one of the major targets for cell proliferation due to the mutation. Since PI3K is a class of kinase enzyme, and no in silico research has been performed on the inhibition of PI3Kα mutation by small molecules, we have selected the protein kinase inhibitor database and performed the energy minimization process by ligand preparation. The key objective of this research is to identify the potential hits from the protein kinase inhibitor library and further to perform lead optimization by a molecular docking and dynamics approach. And so, the protein was selected (PDB ID: 4JPS), having a unique inhibitor and a specific binding pocket with amino acid residue for the inhibition of kinase activity. After the docking protocol validation, structure-based virtual screening by molecular docking and MMGBSA binding affinity calculations were performed and a total of ten hits were reported. Detailed analysis of the best scoring molecules was performed with ADMET analysis, induced fit docking (IFD) and molecular dynamics (MD) simulation. Two molecules - 6943 and 34100 - were considered lead molecules and showed better results than the PI3K inhibitor Copanlisib in the docking assessment, ADMET analysis, and molecular dynamics simulation. Furthermore, the synthetic accessibility of the two compounds - 6943 and 34100 - was investigated using SwissADME, and the two lead molecules are easier to synthesize than the PI3K inhibitor Copanlisib. Computational drug discovery tools were used for identification of kinase inhibitors as anti-cancer agents for NSCLC in the present research.
Insights
This study identifies novel small molecules for inhibiting PI3Kα mutations in non-small cell lung cancer (NSCLC). Computational methods revealed two lead compounds, 6943 and 34100, demonstrating superior efficacy and easier synthesis compared to existing PI3K inhibitors.
Area of Science:
- Computational Chemistry
- Drug Discovery
- Oncology
Background:
- Non-small cell lung cancer (NSCLC) incidence is rising globally.
- PI3Kα mutations are key drivers of NSCLC cell proliferation.
- No prior in silico research explored small molecule inhibition of mutated PI3Kα.
Purpose of the Study:
- Identify potential small molecule inhibitors for mutated PI3Kα.
- Optimize lead compounds using molecular docking and dynamics.
- Discover novel anti-cancer agents for NSCLC.
Main Methods:
- Utilized a protein kinase inhibitor database and energy minimization.
- Performed structure-based virtual screening via molecular docking (PDB ID: 4JPS).
- Conducted MMGBSA binding affinity, ADMET analysis, IFD, and MD simulations.
Main Results:
- Identified ten potential inhibitor hits from virtual screening.
- Two lead molecules (6943 and 34100) outperformed Copanlisib in docking and simulations.
- Lead compounds exhibited favorable ADMET profiles and synthetic accessibility.
Conclusions:
- Compounds 6943 and 34100 are promising lead candidates for NSCLC therapy.
- Computational drug discovery effectively identified novel PI3Kα inhibitors.
- These findings pave the way for developing new anti-cancer agents for NSCLC.
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