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Computational screening of some phytochemicals to identify best modulators for ligand binding domain of estrogen receptor alpha

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dc.contributor.author Murugesan, Sankaranarayanan
dc.date.accessioned 2025-03-10T09:43:23Z
dc.date.available 2025-03-10T09:43:23Z
dc.date.issued 2024-06
dc.identifier.uri https://www.benthamdirect.com/content/journals/cpd/10.2174/0113816128287431240408045732
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/jspui/handle/123456789/18246
dc.description.abstract The peculiar aim of this study is to discover and identify the most effective and potential inhibitors against the most influential target ERα receptor by in silico studies of 45 phytochemicals from six diverse ayurvedic medicinal plants. Methods: The molecular docking investigation was carried out by the genetic algorithm program of AutoDock Vina. The molecular dynamic (MD) simulation investigations were conducted using the Desmond tool of Schrödinger molecular modelling. This study identified the top ten highest binding energy phytochemicals that were taken for drug-likeness test and ADMET profile prediction with the help of the web-based server QikpropADME. Results: Molecular docking study revealed that ellagic acid (-9.3 kcal/mol), emodin (-9.1 kcal/mol), rhein (-9.1 kcal/mol), andquercetin (-9.0 kcal/mol) phytochemicals showed similar binding affinity as standard tamoxifen towards the target protein ERα. MD studies showed that all four compounds possess comparatively stable ligand-protein complexes with ERα target compared to the tamoxifen-ERα complex. Among the four compounds, phytochemical rhein formed a more stable complex than standard tamoxifen. ADMET studies for the top ten highest binding energy phytochemicals showed a better safety profile. Conclusion: Additionally, these compounds are being reported for the first time in this study as possible inhibitors of ERα for treating breast cancer, according to the notion of drug repurposing. Hence, these phytochemicals can be further studied and used as a parent core molecule to develop innovative lead molecules for breast cancer therapy. en_US
dc.language.iso en en_US
dc.publisher Bentham Science en_US
dc.subject Pharmacy en_US
dc.subject ADMET studies en_US
dc.subject Ayurvedic medicinal plants en_US
dc.subject Breast cancer en_US
dc.subject ERα receptor en_US
dc.subject Phytochemicals en_US
dc.title Computational screening of some phytochemicals to identify best modulators for ligand binding domain of estrogen receptor alpha en_US
dc.type Article en_US


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