Optimization of enzymatic hydrolysis for generating potential multifunctional peptides from goat milk: Bioactivity evaluation, structural characterization and molecular interaction analysis

Food-derived bioactive peptides have attracted increasing interest for functional food development. In this study, goat milk proteins were enzymatically hydrolyzed to generate peptides with inhibitory activities against α-glucosidase (α-G), dipeptidyl peptidase-IV (DPP-IV), and xanthine oxidase (XO). Protease screening and response surface methodology were applied to optimize the composite hydrolysis process. The optimized goat milk hydrolysate exhibited inhibitory activities of 73.05 ± 1.38%, 88.63 ± 2.76%, and 80.69 ± 1.65% against α-G, DPP-IV, and XO, respectively. The active peptide fraction was further purified and analyzed by LC–MS/MS, identifying 24 peptide sequences. Bioinformatic screening highlighted LRF and FLPYPYY as potential multifunctional enzyme-inhibitory peptides. Molecular docking, 100 ns molecular dynamics simulations, and MM/PBSA analysis revealed favorable peptide–enzyme interactions and structural stability. This study provides an integrated enzymatic, analytical, and computational strategy for the discovery of goat milk-derived potential multifunctional bioactive peptides.

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Journal
Food Chemistry X
Published
2026-09-29
DOI
https://doi.org/10.1016/j.fochx.2026.104517
Primary Topic
Protein Hydrolysis and Bioactive Peptides
Type
article
Field-Weighted Citation Impact
0.00

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article

Optimization of enzymatic hydrolysis for generating potential multifunctional peptides from goat milk: Bioactivity evaluation, structural characterization and molecular interaction analysis

Wenjing Hu, Guowei Shu, Ge Zhang, Xinru Yu et al.
Food Chemistry X
Protein Hydrolysis and Bioactive Peptides
article

Optimization of enzymatic hydrolysis for generating potential multifunctional peptides from goat milk: Bioactivity evaluation, structural characterization and molecular interaction analysis

Wenjing Hu, Guowei Shu, Ge Zhang, Xinru Yu, Pian Xie, Guoliang Li, Kai Song
article en

Abstract

Food-derived bioactive peptides have attracted increasing interest for functional food development. In this study, goat milk proteins were enzymatically hydrolyzed to generate peptides with inhibitory activities against α-glucosidase (α-G), dipeptidyl peptidase-IV (DPP-IV), and xanthine oxidase (XO). Protease screening and response surface methodology were applied to optimize the composite hydrolysis process. The optimized goat milk hydrolysate exhibited inhibitory activities of 73.05 ± 1.38%, 88.63 ± 2.76%, and 80.69 ± 1.65% against α-G, DPP-IV, and XO, respectively. The active peptide fraction was further purified and analyzed by LC–MS/MS, identifying 24 peptide sequences. Bioinformatic screening highlighted LRF and FLPYPYY as potential multifunctional enzyme-inhibitory peptides. Molecular docking, 100 ns molecular dynamics simulations, and MM/PBSA analysis revealed favorable peptide–enzyme interactions and structural stability. This study provides an integrated enzymatic, analytical, and computational strategy for the discovery of goat milk-derived potential multifunctional bioactive peptides.

Food Chemistry XVol. 39
Shaanxi University of Science and Technology (CN)
National Natural Science Foundation of China, Key Research and Development Projects of Shaanxi Province
Zero hunger
Openalex Percentile: Top 20%
Protein Hydrolysis and Bioactive Peptides
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