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Updated: Mar 2, 2026

Incorporating Target Protein Structure Flexibility and Dynamics in Computational Drug Discovery Using Ensemble-Based Docking Analysis
Published on: June 20, 2025
Unveiling the Small Molecules Binding Site of CD36 Cell Surface Receptor Through Docking and Molecular Dynamics
Naomi Montes-Mondragón1, Rosa Salgado-Brito1, José-Rubén García-Sánchez2
1Universidad Simón Bolívar, Av. Río Mixcoac Nº 48, Col. Insurgentes, Mixcoac, Benito Juárez, Ciudad de México C.P. 03920, México.
Introduction:
CD36 is a transmembrane glycoprotein involved in lipid uptake and signal transduction, playing a crucial role in various physiological and pathological processes. Structurally, it is composed primarily of an ectodomain (residues 30-439), which is essential for ligand binding and facilitating Long-Chain Fatty Acid (LCFA) uptake. Two lysine residues (K164 and K166) have been proposed to contribute significantly to LCFA internalization. Elucidating the ligand-binding cavities within CD36 can provide structural insights that may serve as a foundation for drug design.
Methods:
In this study, we employed a combination of molecular docking, molecular dynamics simulations, and cavity-detection algorithms to investigate the structural basis of CD36 interactions with small molecules and fatty acids.
Results:
We identified three main ligand-binding regions: a primary LCFA-binding cavity, a secondary LCFA-binding cavity, and a Small-Molecule Acceptor Cavity (SMAC). We evaluated three derivatives of the N-(2-hydroxy-4,6-dimethoxybenzylidene)acetohydrazide scaffold (AP5055, AP5156, and AP5258), two polyphenolic compounds (Puerarin and Salvianolic acid), and two well-known CD36 inhibitors (SSO and MTN).
Discussion:
Our findings implicate residues K334, E335, and R337 in disrupting LCFA uptake, while residues T195, L200, F201, Y202, P203, T207, A208, D209, Y230, and K231 delineate the initial segment of the SMAC.
Conclusion:
This study highlights critical residues and structural features involved in ligand recognition by CD36. The identification of the SMAC and its role in modulating LCFA uptake provides promising insights for the development of therapeutic agents targeting CD36-related pathologies, including cancer, diabetes, and metabolic disorders.
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