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April 26, 2026Foods1 citationsOpen Access

The Stability and Digestive Characteristics of Soybean Protein Fibril/κ-Carrageenan Composite Gels for Riboflavin Encapsulation

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BYBowen YangYTYaqi TangTXTianhe Xu

Key Points

  • The aim is to develop a stable soybean protein fibril/κ-carrageenan gel for effective riboflavin encapsulation and delivery.
  • Investigation of different protein types (SPI/SPF) and κC concentrations (2-8 mg/mL) on gel properties.
  • Assessment of gel stability and digestion characteristics using ThT fluorescence and UV absorption spectroscopy.
  • Evaluation of protein leaching rates and thermal properties through differential scanning calorimetry.
  • At 8 mg/mL κC, protein leaching reduced to 22.23%.
  • Thermal denaturation temperatures increased to 79.82 °C, indicating enhanced stability.
  • The release mechanism of riboflavin transitioned from Fickian to non-Fickian diffusion with increasing κC concentration.

Abstract

To address the environmental sensitivity and low bioavailability of riboflavin, this study constructed a soybean protein isolate fibril (SPF)/κ-carrageenan (κC) composite gel delivery system. This study systematically investigated the effects of two independent variables (protein type: SPI/SPF; κC concentration: 2, 4, 6, 8 mg/mL) on the gel structural stability, riboflavin encapsulation performance, and in vitro digestive delivery characteristics of the system. Thioflavin T (ThT) fluorescence and ultraviolet (UV) absorption spectroscopy confirmed the successful preparation of SPF and verified specific intermolecular interactions between SPF and κC. Intermolecular forces, protein leaching rates, and differential scanning calorimetry (DSC) results indicated that compared with SPI-κC composite gels, κC regulates SPF molecular conformation via hydrogen bonding and hydrophobic interactions to exert a synergistic effect. This conformational regulation significantly reduced the protein leaching rates in SPF-κC composite gels, elevated the thermal denaturation temperatures (up to 79.82 °C), and enhanced the gel structural stability. As the κC concentration increased, the environmental stability of SPF-κC riboflavin-loaded composite gels were markedly enhanced, which effectively delayed the gel degradation during simulated gastrointestinal digestion. This was manifested as a reduced protein loss rate (reduced to 22.23%). At a κC concentration of 8 mg/mL, the in vitro release mechanism of riboflavin shifted from Fickian to non-Fickian diffusion.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69edac074a46254e215b3d73https://doi.org/10.3390/foods15091491
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