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Published on: February 9, 2021
Promising disruptors of p53-MDM2 dimerization from some medicinal plant phytochemicals: a molecular modeling study
Abdul-Quddus Kehinde Oyedele1,2, Temitope Isaac Adelusi1, Abdeen Tunde Ogunlana1
1Computational Biology, Drug Discovery Laboratory, Department of Biochemistry, Ladoke Akintola University of Technology, Ogbomosho, Nigeria.
Abstract:
Cancer is a major global health issue that has a high mortality rate. p53, which functions as a tumor suppressor, is critical in preventing tumor development by regulating the cell cycle and inducing apoptosis in damaged cells. However, the tumor suppressor function of p53 is effectively inhibited by its direct interaction with the hydrophobic cleft of MDM2 protein via multiple mechanisms As a result, restoring p53 activity by blocking the p53-MDM2 protein-protein interaction has been proposed as a compelling therapeutic strategy for cancer treatment. The use of molecular docking and phytochemical screening procedures are appraised to inhibit MDM2's hydrophobic cleft and disrupt the p53-MDM2 interaction. For this purpose, a library of 51 bioactive compounds from 10 medicinal plants was compiled and subjected to structure-based virtual screening. Out of these, only 3 compounds (Atalantoflavone, Cudraxanthone 1, and Ursolic acid) emerged as promising inhibitors of MDM2-p53 based on their binding affinities (-9.1 kcal/mol, -8.8 kcal/mol, and -8.8 kcal/mol respectively) when compared to the standard (-8.8 kcal/mol). Moreover, these compounds showed better pharmacokinetic and drug-like profiling than the standard inhibitor (Chromonotriazolopyrimidine 1). Finally, the 100 ns MD simulation analysis confirmed no significant perturbation in the conformational dynamics of the simulated binary complexes when compared to the standard. In particular, Ursolic acid was found to satisfy the molecular enumeration the most compared to the other inhibitors. Our overall molecular modeling finding shows why these compounds may emerge as potent arsenals for cancer therapeutics. Nonetheless, extensive experimental and clinical research is needed to augment their use in clinics.Communicated by Ramaswamy H. Sarma.
Insights
Researchers identified natural compounds like Ursolic acid that can block the MDM2-p53 interaction, a key step in cancer development. These compounds show promise for new cancer therapies by restoring the tumor suppressor function of p53.
Area of Science:
- Biochemistry
- Molecular Biology
- Computational Chemistry
Background:
- Cancer poses a significant global health challenge with high mortality rates.
- The p53 tumor suppressor protein is crucial for preventing cancer by regulating cell cycle and apoptosis.
- MDM2 protein inhibits p53's tumor suppressor activity through direct interaction.
Purpose of the Study:
- To identify novel inhibitors of the p53-MDM2 protein-protein interaction.
- To explore natural compounds from medicinal plants as potential cancer therapeutics.
- To validate potential inhibitors using molecular docking and simulation techniques.
Main Methods:
- Phytochemical screening of 51 bioactive compounds from 10 medicinal plants.
- Structure-based virtual screening and molecular docking to assess binding affinities.
- Pharmacokinetic and drug-like profiling of top-ranked compounds.
- 100 ns molecular dynamics (MD) simulations to analyze complex stability.
Main Results:
- Three compounds, Atalantoflavone, Cudraxanthone 1, and Ursolic acid, showed high binding affinities to MDM2, comparable to a standard inhibitor.
- These natural compounds exhibited favorable pharmacokinetic and drug-like properties.
- MD simulations confirmed the stability of the inhibitor-MDM2 complexes.
- Ursolic acid demonstrated the best molecular enumeration among the identified inhibitors.
Conclusions:
- The identified natural compounds, particularly Ursolic acid, show potential as therapeutic agents for cancer by targeting the p53-MDM2 interaction.
- These findings provide a basis for developing new cancer treatments aimed at restoring p53 tumor suppressor activity.
- Further experimental validation and clinical studies are necessary to translate these findings into effective cancer therapies.
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