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Updated: Jul 27, 2025

Biosensor-based High Throughput Biopanning and Bioinformatics Analysis Strategy for the Global Validation of Drug-protein Interactions
Published on: December 1, 2020
Targeting lipid-sensing nuclear receptors PPAR (α, γ, β/δ): HTVS and molecular docking/dynamics analysis of
Sumit Kumar Mandal1, Sonakshi Puri1, Banoth Karan Kumar2
1Department of Biological Sciences, Birla Institute of Technology and Science Pilani, Pilani Campus, Pilani, Rajasthan, 333 031, India.
Abstract:
The global prevalence of obesity-related systemic disorders, including non-alcoholic fatty liver disease (NAFLD), and cancers are rapidly rising. Several of these disorders involve peroxisome proliferator-activated receptors (PPARs) as one of the key cell signaling pathways. PPARs are nuclear receptors that play a central role in lipid metabolism and glucose homeostasis. They can activate or suppress the genes responsible for inflammation, adipogenesis, and energy balance, making them promising therapeutic targets for treating metabolic disorders. In this study, an attempt has been made to screen novel PPAR pan-agonists from the ZINC database targeting the three PPAR family of receptors (α, γ, β/δ), using molecular docking and molecular dynamics (MD) simulations. The top scoring five ligands with strong binding affinity against all the three PPAR isoforms were eprosartan, canagliflozin, pralatrexate, sacubitril, olaparib. The ADMET analysis was performed to assess the pharmacokinetic profile of the top 5 molecules. On the basis of ADMET analysis, the top ligand was subjected to MD simulations, and compared with lanifibranor (reference PPAR pan-agonist). Comparatively, the top-scoring ligand showed better protein-ligand complex (PLC) stability with all the PPARs (α, γ, β/δ). When experimentally tested in in vitro cell culture model of NAFLD, eprosartan showed dose dependent decrease in lipid accumulation and oxidative damage. These outcomes suggest potential PPAR pan-agonist molecules for further experimental validation and pharmacological development, towards treatment of PPAR-mediated metabolic disorders.
Insights
Researchers identified eprosartan as a potential PPAR pan-agonist for treating metabolic disorders like NAFLD. This novel compound demonstrated significant lipid reduction and oxidative damage decrease in cell models, showing promise for therapeutic development.
Area of Science:
- Pharmacology and Computational Chemistry
- Metabolic Disorders Research
- Drug Discovery
Background:
- Rising global obesity rates correlate with increased metabolic disorders like NAFLD and cancers.
- Peroxisome proliferator-activated receptors (PPARs) are key regulators of lipid metabolism and glucose homeostasis, implicated in these diseases.
- PPARs' role in inflammation, adipogenesis, and energy balance makes them crucial therapeutic targets.
Purpose of the Study:
- To screen for novel PPAR pan-agonists targeting PPARα, PPARγ, and PPARβ/δ using computational methods.
- To identify potential drug candidates for treating PPAR-mediated metabolic disorders.
Main Methods:
- Virtual screening of the ZINC database using molecular docking against PPAR isoforms.
- Molecular dynamics (MD) simulations to assess protein-ligand complex stability.
- ADMET analysis for pharmacokinetic profiling.
- In vitro experimental validation using a NAFLD cell model.
Main Results:
- Five top-scoring ligands (eprosartan, canagliflozin, pralatrexate, sacubitril, olaparib) were identified with strong binding affinities.
- Eprosartan exhibited superior protein-ligand complex stability compared to the reference drug lanifibranor.
- In vitro NAFLD models showed eprosartan dose-dependently reduced lipid accumulation and oxidative damage.
Conclusions:
- Eprosartan demonstrates significant potential as a PPAR pan-agonist.
- The identified compound warrants further experimental validation and pharmacological development for metabolic disorders.
- Computational screening and validation offer a promising avenue for discovering novel therapeutics for metabolic diseases.
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