Synergistic integration of deep learning with protein docking in cardiovascular disease treatment strategies.

IUBMB Life

Faculty of Life and Environmental Sciences, University of Tsukuba, Ibaraki, Japan.

Published: September 2024

AI Article Synopsis

  • This research investigates the use of tocopherol-based nanoemulsions as a potential treatment for cardiovascular diseases (CVD) by examining how tocopherol interacts with key proteins involved in CVD development using molecular docking analysis.
  • Key findings show significant interactions between tocopherol and several proteins, especially 4YAY, which demonstrated strong binding energy and inhibitory potential, suggesting tocopherol's therapeutic value.
  • The study also utilizes deep learning techniques to predict protein-ligand interactions, emphasizing tocopherol's safety, bioavailability, and its promise for managing cardiovascular diseases.

Article Abstract

This research delves into the exploration of the potential of tocopherol-based nanoemulsion as a therapeutic agent for cardiovascular diseases (CVD) through an in-depth molecular docking analysis. The study focuses on elucidating the molecular interactions between tocopherol and seven key proteins (1O8a, 4YAY, 4DLI, 1HW9, 2YCW, 1BO9 and 1CX2) that play pivotal roles in CVD development. Through rigorous in silico docking investigations, assessment was conducted on the binding affinities, inhibitory potentials and interaction patterns of tocopherol with these target proteins. The findings revealed significant interactions, particularly with 4YAY, displaying a robust binding energy of -6.39 kcal/mol and a promising Ki value of 20.84 μM. Notable interactions were also observed with 1HW9, 4DLI, 2YCW and 1CX2, further indicating tocopherol's potential therapeutic relevance. In contrast, no interaction was observed with 1BO9. Furthermore, an examination of the common residues of 4YAY bound to tocopherol was carried out, highlighting key intermolecular hydrophobic bonds that contribute to the interaction's stability. Tocopherol complies with pharmacokinetics (Lipinski's and Veber's) rules for oral bioavailability and proves safety non-toxic and non-carcinogenic. Thus, deep learning-based protein language models ESM1-b and ProtT5 were leveraged for input encodings to predict interaction sites between the 4YAY protein and tocopherol. Hence, highly accurate predictions of these critical protein-ligand interactions were achieved. This study not only advances the understanding of these interactions but also highlights deep learning's immense potential in molecular biology and drug discovery. It underscores tocopherol's promise as a cardiovascular disease management candidate, shedding light on its molecular interactions and compatibility with biomolecule-like characteristics.

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Source
http://dx.doi.org/10.1002/iub.2819DOI Listing

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