Biological Evaluation and Molecular Dynamics Simulation of Chalcone Derivatives as Epidermal Growth Factor-Tyrosine

Kanyani Sangpheak1, Lueacha Tabtimmai2, Supaphorn Seetaha3

  • 1Program in Biotechnology, Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand. swaratchada@gmail.com.

Insights

Researchers screened chalcone derivatives for cancer therapy, identifying potent EGFR-TK inhibitors. Three compounds (1c, 2a, 3e) show promise as lead compounds for developing new targeted cancer treatments.

Area of Science:

  • Medicinal Chemistry
  • Molecular Biology
  • Pharmacology

Background:

  • Targeted cancer therapy is a promising approach.
  • Epidermal growth factor receptor (EGFR) is a key target for novel cancer therapeutics due to its role in cell signaling, survival, and proliferation.

Purpose of the Study:

  • To screen chalcone derivatives for in vitro cytotoxicity against wild-type and mutant EGFR cancer cell lines.
  • To evaluate the EGFR-tyrosine kinase (TK) inhibitory activity of these chalcones.
  • To identify potential lead compounds for EGFR-TK inhibitor development.

Main Methods:

  • In vitro cytotoxicity assays against A431, A549, H1975, and H1650 cancer cell lines.
  • EGFR-TK inhibition assays.
  • Molecular dynamics simulations.
  • ADMET property evaluation.

Main Results:

  • Chalcones 1c, 2a, 3e, 4e, and 4t exhibited significant cytotoxicity (IC50 < 10 µM) against A431 cells and >50% EGFR-TK inhibition.
  • These five compounds were more potent against H1975 (T790M/L858R mutation) than H1650 (exon 19 deletion) cell lines.
  • Chalcones 1c, 2a, and 3e demonstrated EGFR-TK inhibitory activity comparable to erlotinib.
  • Molecular dynamics studies confirmed favorable binding within the EGFR-TK ATP site, interacting with key hydrophobic residues.

Conclusions:

  • Chalcones 1c, 2a, and 3e are effective EGFR-TK inhibitors with potent cytotoxicity.
  • These three chalcones demonstrate favorable binding interactions and ADMET properties.
  • Chalcones 1c, 2a, and 3e represent promising lead compounds for developing novel EGFR-TK inhibitors for targeted cancer therapy.

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