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Published on: November 20, 2021
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.
Abstract:
Active targeting is a prospective strategy for controlled drug delivery to malignant tumor tissues. One of the approaches relies on recognition of a bioactive ligand by a receptor expressed abundantly on the surface of cancer cell membranes. A promising ligand-receptor pair is folic acid (or its dianionic form, folate) combined with the folate receptor-α (FRα). A number of targeting drug delivery systems based on folate have been suggested, but the mechanism of binding of the ligand or its derivatives to the receptor is not fully known at the molecular level. The current study summarizes the results from unbiased all-atom molecular dynamics simulations at physiological conditions describing the binding of two forms of folate and four of its synthetically available derivatives to FRα. The models (ca. 185,000 atoms) contain one receptor molecule, embedded in the outer leaflet of a lipid bilayer, and one ligand, all immersed in saline. The bilayer represents a human cancer cell membrane and consists of 370 asymmetrically distributed lipid molecules from 35 types. The ability of the vector molecules to bind to the receptor, the position of binding, and the interactions between them are analyzed. Spontaneous binding on the nanosecond scale is observed for all molecules, but its time, position, and persistence depend strongly on the ligand. Only folate, 5-methyltetrahydrofolate, and raltitrexed bind selectively at the active site of the receptor. Two binding poses are observed, one of them (realized by raltitrexed) corresponding qualitatively to that reported for the crystallographic structure of the complex folate-FRα. Pemetrexed adsorbs nonspecifically on the protein surface, while methotrexate and pteroyl ornithine couple much less to the receptor. The molecular simulations reproduce qualitatively correctly the relative binding affinity measured experimentally for five of the ligands. Analysis of the interactions between the ligands and FRα shows that in order to accomplish specific binding to the active site, a combination of hydrogen bonding, π-stacking, and van der Waals and Coulomb attraction should be feasible simultaneously for the vector molecule. The reported results demonstrate that it is possible to observe receptor-ligand binding without applying bias by representing the local environment as close as possible and contain important molecular-level guidelines for the design of folate-based systems for targeted delivery of anticancer drugs.
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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