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Relative Binding Free Energy Methods Based on the Alchemical Transformation Framework: An Effective Strategy for Predicting the Umami Recognition Threshold of Umami Peptide Derivatives

鲜味 化学 计算生物学 肽 人工智能 生物系统 机器学习 计算机科学 品味 生物化学 生物
作者
Zhiyong Cui,Tianxing Zhou,Yueming Wang,Danni Zhang,Jiaming Gu,Zhiwei Zhang,Xiaoxiao Feng,Wenli Wang,Yuan Liu
出处
期刊:Journal of Agricultural and Food Chemistry [American Chemical Society]
标识
DOI:10.1021/acs.jafc.5c02782
摘要

Umami peptides integrating both flavor and nutritional properties possess numerous derivatives that pose challenges for prediction using absolute free energy prediction tools and peptide classification models. While relative binding free energy (RBFE) methods based on the alchemical transformation framework have demonstrated excellent performance in drug activity prediction, their application in taste activity prediction remains unexplored. Through scientific literature analysis, 611 umami peptides and derivatives were systematically organized and cataloged with their structures and recognition thresholds then clustered into eight clusters. AFEMs were employed to calculate the RBFE between the central structure of each cluster and its derivatives, followed by logarithmic fitting of the ratio (base 10) between these energies and their thresholds. RBFE achieved near-perfect accuracy in qualitative judgment and significantly outperformed approximation methods (docking, MM-GBSA, and MM-PBSA) in qualitative prediction (R2 = 0.912). Dynamic equilibrium analysis identified conserved contacts, including HdB_147_ASP, HI_HdB_218_ASP, HI_HdB_220_TYR, HdB_SB_277_ARG, and HdB_301_GLU. Density functional theory elucidated how subtle structural differences alter electrostatic surfaces and ΔHOMO-LUMO gaps, thereby driving threshold variations. The curated data set has been published as TPDB-Derivative (http://www.tastepeptides-meta.com/TastePeptides_Derivative). This study pioneered the application of AFEMs for activity prediction in umami research and provided technical foundations for the rational design of future umami peptides.
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