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.

Abstract

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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