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March 8, 2026Foods2 citationsOpen Access

Pigskin Collagen-Derived Antifreeze Peptides as Clean-Label Cryoprotectants: Inhibition of Ice Recrystallization and Suppression of Oxidative Deterioration in Heme-Rich Pork Sausages

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WXWentao XuanHWHuiqin WangGGGuanzhen Gao

Key Points

  • The research aimed to investigate the effectiveness of pigskin collagen-derived antifreeze peptides as cryoprotectants in pork sausages.
  • Characterized pigskin collagen-derived antifreeze peptides for thermal hysteresis and ice recrystallization inhibition.
  • Evaluated thawing and cooking loss in pork sausages with added cryoprotectants.
  • Utilized low-field NMR to assess hydration properties of actomyosin in sausages.
  • APPs reduced thawing loss to 4.87%, compared to 7.51% in controls, and cooking loss to 14.59%.
  • Maintained immobilized water proportion at 93.67%, higher than the 88.50% in control sausages.
  • Inhibited oxidative deterioration, limiting protein carbonyl content to 3.08 nmol/mg compared to 3.71 nmol/mg in controls.

Abstract

Frozen red meat products face dual challenges: structural damage from ice recrystallization and subsequent oxidative deterioration driven by endogenous pro-oxidants in heme-rich matrices. This study investigated the efficacy of pigskin collagen-derived antifreeze peptides (APPs) as clean-label cryoprotectants in pork sausages. In vitro characterization confirmed distinct thermal hysteresis (0.51 °C) and potent ice recrystallization inhibition. In the sausage system, 6% APPs overcame ionic screening effects, reducing thawing loss to 4.87% (vs. 7.51% in control) and cooking loss to 14.59%, significantly outperforming commercial phosphates in moisture retention. Low-field NMR revealed that APPs stabilized the actomyosin hydration shell, maintaining the immobilized water proportion (P21) at 93.67% (vs. 88.50% in control) and inhibiting conversion of immobilized water into free water. Furthermore, APPs suppressed oxidative deterioration, limiting protein carbonyl content to 3.08 nmol/mg (vs. 3.71 nmol/mg in control), supporting a “physical–chemical cascade” mechanism whereby superior microstructural preservation mitigates downstream oxidative deterioration. Despite a trade-off in textural resilience (0.37 vs. 0.44), APPs function as specialized “Ice-Structure Stabilizers” offering a robust clean-label strategy for preserving heme-rich meat products.

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Cite This Study

Xuan et al. (2026) studied this question.

synapsesocial.com/papers/69acc59c32b0ef16a4050176https://doi.org/10.3390/foods15050925
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