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May 8, 2026Current Research in Food Science0 citationsOpen Access

Piperlonguminine inhibits hen egg white lysozyme amyloid fibril formation and mitigates amyloid fibril–induced hepatocellular damage

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GLGangqiang LiuHYHaotian YangZXZhuoheng Xie

Key Points

  • This study aims to explore the inhibitory effects of piperlonguminine on amyloid fibril formation of hen egg white lysozyme and its protective properties against cellular damage.
  • Analyzed inhibitory activity of piperlonguminine against hen egg white lysozyme amyloid fibril formation using spectroscopic and microscopic techniques.
  • Conducted molecular docking and dynamics simulations to evaluate interactions between piperlonguminine and hen egg white lysozyme amyloid fibrils.
  • Performed cellular experiments on NCTC1469 cells to assess cytotoxic effects induced by amyloid fibrils and the protective role of piperlonguminine.
  • Piperlonguminine significantly inhibited amyloid fibril formation with a reduction in β-sheet transitions and preservation of α-helical structures.
  • Molecular docking showed strong binding interactions of piperlonguminine with hen egg white lysozyme amyloid fibrils enhancing structural stability.
  • Piperlonguminine reduced cytotoxicity and membrane damage in NCTC1469 cells caused by amyloid fibrils.

Abstract

Protein misfolding and aggregation into amyloid fibrils (AFs) are critical issues associated with protein stability during food processing and storage, as well as with pathological damage in organisms. Hen egg white lysozyme (HEWL), a widely used protein in egg products, meat processing, and food preservation, serves as a classical model for investigating amyloidogenesis. Piperlonguminine (PPR), a low-toxicity bioactive alkaloid from Piperis Longi Fructus (a medicinal and food-homologous spice), has not yet been reported to regulate amyloid fibrillation in food proteins. This study explored the inhibitory activity of PPR against HEWL–AF formation and its protective effect on AF-induced hepatocellular damage, with a focus on its application potential in food systems. Spectroscopic and microscopic analyses confirmed that PPR effectively inhibited HEWL–AF formation by maintaining α-helical structures, reducing β-sheet transitions, and stabilizing hydrophobic regions of HEWL. Molecular docking and dynamics simulations revealed that PPR interacts with HEWL–AF through hydrogen bonding, π–π stacking, and van der Waals interactions, thereby disrupting the food protein aggregation pathway. Cellular experiments confirmed that HEWL–AF induced membrane damage and cytotoxicity in NCTC1469 cells, whereas PPR significantly mitigated these adverse effects. Collectively, these findings indicate that PPR is a promising natural inhibitor of food protein amyloid fibrillation with hepatoprotective activity, providing a theoretical foundation for its application in functional food development and the improvement of protein stability in food processing systems.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69fd7d94bfa21ec5bbf06036https://doi.org/10.1016/j.crfs.2026.101429
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