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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Targeting Y220C mutated p53 by Foeniculum vulgare-derived phytochemicals as cancer therapeutics
Saksham Garg1, Japneet Singh1, Smita Rastogi Verma2
1Department of Biotechnology, Delhi Technological University, Delhi, 110042, India.
Context:
The mutations in the TP53 gene are the most frequent (50-60% of human cancer) genetic alterations in cancer cells, indicating the critical role of wild-type p53 in the regulation of cell proliferation and apoptosis upon oncogenic stress. Most missense mutations are clustered in the DNA-binding core domain, disrupting DNA binding ability. However, some mutations like Y220C occur outside the DNA binding domain and are associated with p53 structure destabilization. Overall, the results of these mutations are single amino acid substitutions in p53 and the production of dysfunctional p53 protein in large amounts, consequently allowing the escape of apoptosis and rapid progression of tumor growth. Thus, therapeutic targeting of mutant p53 in tumors to restore its wild-type tumor suppression activity has immense potential for translational cancer research. Various molecules have been discovered with modern scientific techniques to reactivate mutant p53 by reverting structural changes and/or DNA binding ability. These compounds include small molecules, various peptides, and phytochemicals. TP53 protein is long thought of as a potential target; however, its translation for therapeutic purposes is still in its infancy. The study comprehensively analyzed the therapeutic potential of small phytochemicals from Foeniculum vulgare (Fennel) with drug-likeness and capability to reactivate mutant p53 (Y220C) through molecular docking simulation. The docking study and the stable molecular dynamic simulations revealed juglalin (- 8.6 kcal/mol), retinol (- 9.14 kcal/mol), and 3-nitrofluoranthene (- 8.43 kcal/mol) significantly bind to the mutated site suggesting the possibility of drug designing against the Y220C mutp53. The study supports these compounds for further animal based in vivo and in vitro research to validate their efficacy.
Methods:
For the purposes of drug repurposing, recently in-silico methods have presented with opportunity to rule out many compounds which have less probability to act as a drug based on their structural moiety and interaction with the target macromolecule. The study here utilizes molecular docking via Autodock 4.2.6 and molecular dynamics using Schrodinger 2021 to find potential therapeutic options which are capable to reactive the mutated TP53 protein.
Insights
This study explored phytochemicals from fennel to reactivate mutant TP53 protein (Y220C). Juglalin, retinol, and 3-nitrofluoranthene showed potential for drug design against cancer-driving TP53 mutations.
Area of Science:
- Oncology
- Pharmacology
- Computational Chemistry
Background:
- TP53 gene mutations are prevalent in human cancers (50-60%), leading to dysfunctional p53 protein and promoting tumor growth.
- Mutations like Y220C destabilize p53 structure, impairing its tumor suppressor functions and enabling cancer progression.
- Restoring wild-type p53 activity is a promising therapeutic strategy, though translating this into treatments remains challenging.
Purpose of the Study:
- To investigate the potential of Foeniculum vulgare (Fennel) phytochemicals to reactivate mutant p53 (Y220C).
- To identify drug-like compounds capable of restoring the tumor suppressor activity of mutated TP53.
- To explore novel therapeutic avenues for cancers with TP53 mutations using computational drug design.
Main Methods:
- Utilized in-silico methods, including molecular docking (Autodock 4.2.6) and molecular dynamics simulations (Schrodinger 2021).
- Screened phytochemicals for their ability to interact with and potentially reactivate the Y220C mutated TP53 protein.
- Assessed drug-likeness and binding affinity of identified compounds to the mutated p53 target.
Main Results:
- Identified juglalin, retinol, and 3-nitrofluoranthene as compounds with significant binding affinity to the Y220C mutated p53 site.
- Docking simulations revealed binding energies of -8.6 kcal/mol for juglalin, -9.14 kcal/mol for retinol, and -8.43 kcal/mol for 3-nitrofluoranthene.
- These findings suggest these compounds are promising candidates for developing drugs targeting Y220C mutant p53.
Conclusions:
- Fennel-derived compounds juglalin, retinol, and 3-nitrofluoranthene show potential for reactivating Y220C mutant p53.
- These compounds represent viable starting points for designing novel therapeutics against TP53-mutated cancers.
- Further in vitro and in vivo studies are warranted to validate the efficacy of these identified phytochemicals.
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