In silico molecular docking and dynamic simulation of eugenol compounds against breast cancer

Hezha O Rasul1, Bakhtyar K Aziz2, Dlzar D Ghafour3,4

  • 1Department of Pharmaceutical Chemistry, College of Medicals and Applied Sciences, Charmo University, Peshawa Street, Chamchamal, 46023, Sulaimani, Iraq. hezha.rasul@charmouniversity.org.

Insights

Eugenol compounds show promise for breast cancer treatment by inhibiting key receptors. Eugenol cinnamaldehyde demonstrated the best potential in silico, suggesting further drug development.

Area of Science:

  • Biochemistry
  • Computational Chemistry
  • Pharmacology

Background:

  • Breast cancer is a leading cause of cancer death in women globally.
  • Therapeutic resistance and adverse effects limit current breast cancer treatments.
  • Eugenol molecules exhibit potential interactions with breast cancer-related receptors.

Purpose of the Study:

  • To investigate the anti-breast cancer potential of eugenol compounds.
  • To evaluate the inhibitory actions of eugenols on key breast cancer targets (e.g., Erα, PR, EGFR, CDK2, mTOR, ERBB2, c-Src, HSP90).
  • To identify lead eugenol compounds for further drug development through in silico methods.

Main Methods:

  • Drug-likeness assessment using Lipinski's rule of five for 120 eugenol molecules.
  • Structure-based virtual screening via molecular docking of 87 eugenol compounds against breast cancer receptors using AutoDock Vina.
  • Molecular dynamic simulations (100 ns) to assess protein-ligand complex stability (RMSD, RMSF, interactions).

Main Results:

  • Eugenol cinnamaldehyde exhibited the highest docking score, indicating strong binding affinity for breast cancer targets.
  • Aspirin eugenol ester and 4-Allyl-2-methoxyphenyl cinnamate also showed significant docking scores.
  • Molecular dynamics simulations confirmed the stability of protein-ligand complexes for top-scoring compounds.

Conclusions:

  • In silico studies suggest that specific eugenol derivatives possess potent anti-breast cancer activity.
  • Eugenol cinnamaldehyde is a promising candidate for further investigation and lead optimization.
  • These findings support the development of novel eugenol-based therapeutics for breast cancer treatment.

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