Initial Stages of Spontaneous Binding of Folate-Based Vectors to Folate Receptor-α Observed by Unbiased Molecular

Ethan N Schaber1, Nikoleta Ivanova1, Stoyan Iliev1

  • 1Laboratory of Quantum and Computational Chemistry, Faculty of Chemistry and Pharmacy, Sofia University "St. Kliment Ohridski", 1 James Bourchier boulevard, Sofia 1164, Bulgaria.

Insights

Molecular dynamics simulations reveal how folate and its derivatives bind to the folate receptor-alpha (FRα), guiding the design of targeted cancer drug delivery systems. Specific binding requires a combination of interactions for effective cancer therapy.

Area of Science:

  • Biochemistry and Molecular Biology
  • Computational Chemistry
  • Nanotechnology and Drug Delivery

Background:

  • Active targeting strategies enhance drug delivery to tumors by utilizing ligand-receptor interactions.
  • Folate and its receptor-alpha (FRα) are a promising pair for active targeting of cancer cells.
  • The molecular-level binding mechanisms of folate derivatives to FRα are not fully understood.

Purpose of the Study:

  • To investigate the molecular dynamics of folate and its synthetic derivatives binding to FRα.
  • To elucidate the binding modes, positions, and interactions at the molecular level.
  • To provide guidelines for designing effective folate-based targeted drug delivery systems.

Main Methods:

  • Unbiased all-atom molecular dynamics simulations were performed under physiological conditions.
  • Simulations included folate receptor-alpha embedded in a realistic lipid bilayer representing a cancer cell membrane.
  • Analysis focused on ligand binding ability, position, persistence, and specific molecular interactions.

Main Results:

  • All tested folate derivatives showed spontaneous binding to FRα on the nanosecond scale.
  • Selective binding to the active site was observed for folate, 5-methyltetrahydrofolate, and raltitrexed.
  • Binding affinity and mode varied significantly among derivatives, with raltitrexed showing a crystallographically consistent pose.
  • Molecular simulations qualitatively reproduced experimental binding affinities for most ligands.
  • Specific active site binding requires a combination of hydrogen bonding, π-stacking, and van der Waals/Coulomb interactions.

Conclusions:

  • Molecular dynamics simulations can accurately model receptor-ligand binding without bias.
  • The study provides crucial molecular-level insights into folate-FRα interactions.
  • Findings offer valuable guidelines for the rational design of novel folate-based anticancer drug delivery systems.

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