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A Kinetic Fluorescence-based Ca2+ Mobilization Assay to Identify G Protein-coupled Receptor Agonists, Antagonists, and Allosteric Modulators
Published on: February 20, 2018
Identification of potential dual agonists of FXR and TGR5 using e-pharmacophore based virtual screening
Thangaraj Sindhu1, Pappu Srinivasan
1Molecular Biology Lab, Department of Bioinformatics, Alagappa University, Karaikudi, Tamilnadu-630004, India. sri.bioinformatics@gmail.com.
Abstract:
Farnesoid X receptor and Takeda G-protein-coupled receptor-5 are well known bile acid receptors and act as promising targets for the drug development and treatment of diabetes. Agonists of both the bile acid receptors increase insulin sensitivity and control glucose, lipids and bile acid homeostasis. The current study deals with the identification of novel dual agonists using ligand and structure-based virtual screening. Initially, an experimentally proven well-known dual agonist of FXR and TGR5, namely INT-767, was docked into the binding sites of FXR and TGR5 to determine the protein residues important for ligand binding. The docked complexes FXRINT-767 and TGR5INT-767 were used to generate e-pharmacophore hypotheses. Ligand-based virtual screening was carried out using the hypothetical e-pharmacophore model against the ChemBridge database. Further, structure-based virtual screening was performed with screened hits to find potential agonists of FXR and TGR5. A total of four best agonists were identified based on their affinity and mode of interactions with the receptors. The binding mode of these compounds with both receptors was analyzed in detail. Furthermore, molecular dynamics, ADME toxicity prediction, density functional theory and binding free energy calculations were carried out to rank the compounds. Based on the above analyses, the most potent compound, ChemBridge_9149693, was selected for further in vitro studies. The results of in vitro assays suggested that ChemBridge_9149693 is a potent and promising drug for the treatment of type II diabetes. Thus, the compound could be used for further drug design and development of dual agonists of FXR and TGR5.
Insights
Researchers identified a novel dual agonist, ChemBridge_9149693, targeting Farnesoid X receptor (FXR) and Takeda G-protein-coupled receptor-5 (TGR5) for type II diabetes treatment. This compound shows promise for improving insulin sensitivity and metabolic homeostasis.
Area of Science:
- Pharmacology
- Computational Chemistry
- Drug Discovery
Background:
- Farnesoid X receptor (FXR) and Takeda G-protein-coupled receptor-5 (TGR5) are key bile acid receptors implicated in metabolic regulation.
- Agonists targeting these receptors show potential for treating type II diabetes by enhancing insulin sensitivity and managing glucose, lipid, and bile acid homeostasis.
Purpose of the Study:
- To identify novel dual agonists of FXR and TGR5 using computational screening methods.
- To evaluate the potential of identified compounds as therapeutic agents for type II diabetes.
Main Methods:
- Ligand and structure-based virtual screening, including docking studies with a known dual agonist (INT-767) to define pharmacophore models.
- Screening against the ChemBridge database and subsequent structure-based virtual screening of hits.
- In-depth analysis of binding modes, molecular dynamics simulations, ADME/toxicity predictions, DFT calculations, and binding free energy assessments.
Main Results:
- Four potent dual agonists of FXR and TGR5 were identified through virtual screening.
- The compound ChemBridge_9149693 demonstrated high affinity and favorable interaction modes with both receptors.
- In vitro assays confirmed ChemBridge_9149693 as a potent agonist, suggesting its therapeutic potential for type II diabetes.
Conclusions:
- ChemBridge_9149693 is a promising novel dual agonist of FXR and TGR5 with significant potential for type II diabetes treatment.
- The identified compound warrants further investigation for drug design and development as a therapeutic strategy for metabolic disorders.
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