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Updated: Jun 5, 2025

An Orthotopic Murine Model of Human Prostate Cancer Metastasis
Published on: September 18, 2013
Study of Glabranin as an Inhibitor Against Prostate Cancer: Molecular Docking, Molecular Dynamics Simulation, MM-PBSA
Rene Barbie Browne1, Nabajyoti Goswami2, Probodh Borah3
1Department of Biochemistry, Assam Don Bosco University, Guwahati, India.
Abstract:
Prostate cancer is the World's second most frequent malignancy, with the fifth-highest male mortality rate. In advanced prostate cancer patients, point mutations such as T877A and W741L are prevalent, imparting treatment resistance and hence promoting cancer development. The emergence of drug resistance in prostate cancer necessitates the development of suitable ligands to allow for stronger interactions with the receptors, which can inhibit cancer progression. The present study focuses on flavonoids produced by plants, which may act as inhibitors of point mutations like T877A and W741L in prostate cancer. This research was conducted using an in-silico method where the compound Glabranin and its derivatives were virtually screened to identify potential drugs for combating such point mutations. Thirty-five Molecular Dockings were performed to find the ligand-receptor complexes with the lowest binding energy. Moreover, employing a variety of tools, ligands were evaluated for drug-likeness and toxicity, indicating a promising drug candidate. Based on the results of Molecular Docking, Drug-likeness, and ADMET testing, eight structures were subjected to a 100 ns Molecular Dynamics simulation. A QSAR analysis was also performed based on the simulation findings. In this study, it was revealed that GlaMod2 phytocompound was effective against T877A and W741L mutations in prostate cancer. It was observed that the phytocompound was stable and had potential properties for the development of a novel drug to combat prostate cancer and drug resistance This phytocompound may therefore be effective in the development of prostate cancer inhibitors for patients with mutant androgen receptors.
Supplementary Information:
The online version contains supplementary material available at 10.1007/s12291-023-01134-3.
Insights
A novel plant-based compound, GlaMod2, shows promise in inhibiting prostate cancer mutations T877A and W741L. This phytocompound demonstrates stability and potential for developing new drugs to overcome treatment resistance in advanced prostate cancer.
Area of Science:
- * Pharmacology
- * Computational Chemistry
- * Oncology
Background:
- * Prostate cancer is a leading cause of cancer death globally.
- * Treatment resistance in advanced prostate cancer is often driven by point mutations like T877A and W741L.
- * Novel therapeutic strategies are needed to overcome drug resistance.
Purpose of the Study:
- * To identify plant-derived flavonoids as potential inhibitors of prostate cancer mutations T877A and W741L.
- * To evaluate the drug-likeness and toxicity of identified compounds.
- * To assess the stability and efficacy of lead compounds through molecular dynamics simulations.
Main Methods:
- * In-silico screening of Glabranin derivatives.
- * Molecular docking to identify low binding energy complexes.
- * Drug-likeness and ADMET (Absorption, Distribution, Metabolism, Excretion, Toxicity) prediction.
- * Molecular Dynamics (MD) simulations and Quantitative Structure-Activity Relationship (QSAR) analysis.
Main Results:
- * Thirty-five molecular docking studies identified potential ligand-receptor complexes.
- * GlaMod2 emerged as a promising phytocompound candidate.
- * MD simulations and QSAR analysis confirmed the stability and efficacy of GlaMod2 against T877A and W741L mutations.
- * GlaMod2 demonstrated favorable drug-likeness and toxicity profiles.
Conclusions:
- * GlaMod2 is a potent inhibitor of T877A and W741L mutations in prostate cancer.
- * This phytocompound exhibits stability and favorable properties for novel drug development.
- * GlaMod2 holds potential for developing new prostate cancer inhibitors for patients with mutant androgen receptors and drug resistance.
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