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This study utilized computational drug repurposing to identify potential non-hormonal treatments for endometriosis by targeting the histone acetyltransferase p300, which drives inflammation and invasion. The researchers conducted a virtual screening of 2,083 FDA-approved drugs against the p300 ligand-binding domain, followed by molecular dynamics simulations and MM-PBSA analysis to evaluate binding stability. Three compounds, including Naldemedine, Bictegravir, and Zavegepant, showed favorable docking affinities, with Bictegravir demonstrating the most stable interaction in subsequent simulations. This paper is centrally about endometriosis — specifically exploring a novel epigenetic target for non-hormonal therapeutic intervention through in silico methods.
Abstract
Abstract Endometriosis is a gynecological disorder, characterized by debilitating pain and commonly associated with infertility. Medical therapies are often ineffective, with 25–34% of patients exhibit no or poor response, and many experiencing intolerable side effects that limit long term use. P300 is a critical histone acetyltransferase that promotes inflammation and invasion through epigenetic modulation of immune cells, and upregulation of pro-inflammatory gene expression. In this study, we aimed to identify potential inhibitors of p300 for treating endometriosis using computational drug repurposing. We performed a molecular docking-based virtual screening of 2,083 Food and Drug Administration (FDA) approved drugs against the crystal structure of p300 ligand-binding domain, followed by molecular dynamics (MD) simulations and Molecular Mechanics Poisson Boltzmann Surface Area (MM-PBSA) analysis to further assess the stability and the binding interactions of the top-ranked drugs. Three compounds, Naldemedine, Bictegravir and Zavegepant, exhibited favorable docking affinities and interaction profiles. Further evaluation using 300 ns molecular dynamics simulations and MM-PBSA analyses demonstrated that Bictegravir exhibited the most favorable binding in complex with p300. Lastly, these findings underscore the potential of bioinformatics approaches in providing valuable resources and novel perspective on therapeutic strategies that are often overlooked in the context of endometriosis.
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Abstract
Endometriosis is a gynecological disorder, characterized by debilitating pain and commonly associated with infertility. Medical therapies are often ineffective, with 25–34% of patients exhibit no or poor response, and many experiencing intolerable side effects that limit long term use. P300 is a critical histone acetyltransferase that promotes inflammation and invasion through epigenetic modulation of immune cells, and upregulation of pro-inflammatory gene expression. In this study, we aimed to identify potential inhibitors of p300 for treating endometriosis using computational drug repurposing. We performed a molecular docking-based virtual screening of 2,083 Food and Drug Administration (FDA) approved drugs against the crystal structure of p300 ligand-binding domain, followed by molecular dynamics (MD) simulations and Molecular Mechanics Poisson Boltzmann Surface Area (MM-PBSA) analysis to further assess the stability and the binding interactions of the top-ranked drugs. Three compounds, Naldemedine, Bictegravir and Zavegepant, exhibited favorable docking affinities and interaction profiles. Further evaluation using 300 ns molecular dynamics simulations and MM-PBSA analyses demonstrated that Bictegravir exhibited the most favorable binding in complex with p300. Lastly, these findings underscore the potential of bioinformatics approaches in providing valuable resources and novel perspective on therapeutic strategies that are often overlooked in the context of endometriosis.
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Erraji, H., Hakmi, M., Zarqaoui, M. et al. Computational drug repurposing against histone acetyltransferase p300 for non-hormonal treatment of endometriosis using virtual screening and molecular dynamics simulations. Sci Rep (2026). https://doi.org/10.1038/s41598-026-68337-5
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DOI: https://doi.org/10.1038/s41598-026-68337-5
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