Tocotrienol as a multi-target inhibitor of ICAM-1, VCAM-1, and E-selectin: Comparison using AutoDock and GNINA

Hazirah Watikah Abdah1, Siti Azma Jusoh2, Nur Syafiqah Farhanah Dzulkharnien1

  • 1Cardiovascular Advancement and Research Excellence Institute (CARE Institute), Universiti Teknologi MARA (UiTM) Sungai Buloh Selangor Campus, Sungai Buloh, Selangor 47000, Malaysia.

Insights

Tocotrienols, a form of vitamin E, show potential in treating atherosclerosis by interacting with key inflammatory molecules. Computational analysis revealed specific tocotrienol isomers effectively bind to E-selectin, ICAM-1, and VCAM-1, suggesting therapeutic promise.

Area of Science:

  • Biochemistry and Molecular Biology
  • Pharmacology and Drug Discovery
  • Computational Chemistry

Background:

  • Atherosclerosis is a chronic inflammatory condition involving endothelial dysfunction and leukocyte adhesion, mediated by cell adhesion molecules (CAMs) like E-selectin, ICAM-1, and VCAM-1.
  • Tocotrienols, a subgroup of vitamin E, possess antioxidant and anti-inflammatory properties, indicating potential therapeutic value in mitigating atherosclerosis.
  • Understanding the specific interactions of tocotrienol isomers with CAMs is crucial for developing targeted therapies.

Purpose of the Study:

  • To comparatively evaluate the binding affinities and molecular interaction profiles of α-, β-, γ-, and δ-tocotrienol isomers with E-selectin, ICAM-1, and VCAM-1.
  • To assess the stability of protein-ligand complexes using molecular docking and molecular dynamics simulations.
  • To differentiate the multi-target potency of tocotrienol isomers in targeting inflammatory and vascular pathways.

Main Methods:

  • Molecular docking using AutoDock Vina and AI-assisted GNINA (CNN-based) to predict binding affinities of tocotrienol isomers to target CAMs.
  • Molecular dynamics (MD) simulations over 200 ns to analyze the stability and key interactions of top-ranked protein-ligand complexes.
  • MolModa platform utilized for automated molecular docking.

Main Results:

  • AutoDock Vina indicated all tocotrienol isomers showed strong binding to VCAM-1, with β-tocotrienol exhibiting the highest affinity (-7.59 kcal/mol).
  • AI-assisted GNINA identified β-tocotrienol as the most favorable binder for E-selectin (-6.91 kcal/mol) and ICAM-1 (-7.08 kcal/mol), highlighting hydrogen bonding and hydrophobic interactions.
  • MD simulations confirmed stabilizing interactions, particularly with GLU87, and intermittent hydrogen bonding at ASP178.

Conclusions:

  • This study provides the first comprehensive computational evidence differentiating the multi-target binding potency of tocotrienol isomers against key atherosclerosis-related CAMs.
  • β-tocotrienol emerged as a promising candidate for targeting E-selectin, ICAM-1, and VCAM-1, suggesting its potential therapeutic role in atherosclerosis.
  • Further experimental validation is necessary to confirm these in silico findings and elucidate the biological significance of these interactions.

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