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Cyclohexane-1,3-dione Derivatives as Future Therapeutic Agents for NSCLC: QSAR Modeling, In Silico ADME-Tox
Ossama Daoui1, Souad Elkhattabi1, Mohamed Bakhouch2
1Laboratory of Engineering, Systems and Applications, National School of Applied Sciences, Sidi Mohamed Ben Abdellah-Fez University, BP Box 72, Fez30000, Morocco.
Abstract:
The abnormal expression of the c-Met tyrosine kinase has been linked to the proliferation of several human cancer cell lines, including non-small-cell lung cancer (NSCLC). In this context, the identification of new c-Met inhibitors based on heterocyclic small molecules could pave the way for the development of a new cancer therapeutic pathway. Using multiple linear regression (MLR)-quantitative structure-activity relationship (QSAR) and artificial neural network (ANN)-QSAR modeling techniques, we look at the quantitative relationship between the biological inhibitory activity of 40 small molecules derived from cyclohexane-1,3-dione and their topological, physicochemical, and electronic properties against NSCLC cells. In this regard, screening methods based on QSAR modeling with density-functional theory (DFT) computations, in silico pharmacokinetic/pharmacodynamic (ADME-Tox) modeling, and molecular docking with molecular electrostatic potential (MEP) and molecular mechanics-generalized Born surface area (MM-GBSA) computations were used. Using physicochemical (stretch-bend, hydrogen bond acceptor, Connolly molecular area, polar surface area, total connectivity) and electronic (total energy, highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) energy levels) molecular descriptors, compound 6d is identified as the optimal scaffold for drug design based on in silico screening tests. The computer-aided modeling developed in this study allowed us to design, optimize, and screen a new class of 36 small molecules based on cyclohexane-1,3-dione as potential c-Met inhibitors against NSCLC cell growth. The in silico rational drug design approach used in this study led to the identification of nine lead compounds for NSCLC therapy via c-Met protein targeting. Finally, the findings are validated using a 100 ns series of molecular dynamics simulations in an aqueous environment on c-Met free and complexed with samples of the proposed lead compounds and Foretinib drug.
Insights
Researchers identified novel c-Met inhibitors for non-small-cell lung cancer (NSCLC) therapy. Using computational methods, they designed and screened small molecules, pinpointing nine promising lead compounds targeting c-Met protein for potential cancer treatment.
Area of Science:
- Medicinal Chemistry
- Computational Chemistry
- Oncology
Background:
- Abnormal c-Met tyrosine kinase expression drives proliferation in various human cancers, including non-small-cell lung cancer (NSCLC).
- Developing novel c-Met inhibitors based on small heterocyclic molecules offers a promising therapeutic strategy for cancer treatment.
Purpose of the Study:
- To establish quantitative structure-activity relationships (QSAR) between molecular properties and inhibitory activity against NSCLC cells.
- To identify optimal molecular scaffolds and design new potential c-Met inhibitors for NSCLC therapy using computational approaches.
Main Methods:
- Utilized multiple linear regression (MLR)-QSAR and artificial neural network (ANN)-QSAR modeling for 40 cyclohexane-1,3-dione derivatives.
- Employed density-functional theory (DFT), in silico ADME-Tox, molecular docking, molecular electrostatic potential (MEP), and MM-GBSA computations.
- Performed 100 ns molecular dynamics simulations for validation.
Main Results:
- Compound 6d emerged as an optimal scaffold based on physicochemical and electronic descriptors.
- Designed and screened 36 new cyclohexane-1,3-dione-based molecules as potential c-Met inhibitors.
- Identified nine lead compounds with potential for NSCLC therapy via c-Met targeting.
Conclusions:
- The developed in silico rational drug design approach successfully identified potent c-Met inhibitors.
- The identified lead compounds show promise for future development in NSCLC treatment.
- Molecular dynamics simulations validated the efficacy of the proposed lead compounds against c-Met.
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