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February 25, 2026Food Chemistry0 citationsOpen Access

Carotenoid bioaccessibility in food-grade Bigels: Impact of hydrogel:Oleogel ratio and 3D printing

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AFAndrêssa S. FernandesEJEduardo Jacob-LopezLZLeila Queiroz Zepka

Key Points

  • To evaluate how hydrogel:oleogel ratios and 3D printing affect carotenoid bioaccessibility in bigels.
  • Developed food-grade bigels using agar-based hydrogels and carnauba wax-based oleogels.
  • Tested different hydrogel:oleogel ratios (80:20, 60:40, 40:60, 20:80).
  • Assessed carotenoid digestive stability and bioaccessibility using an in vitro digestion model.
  • Analyzed carotenoid composition from A. platensis and S. obliquus.
  • Bigels significantly increased carotenoid bioaccessibility compared to oleogels (up to 40%).
  • Carotenoid bioaccessibility reached a final increase of up to 12% in the 80:20 bigels.
  • Composition of carotenoids affected their response to bigel formulation and 3D printing.
  • Xanthophyll-rich extracts exhibited higher digestive stability and micellization efficiency.

Abstract

In this study, food-grade bigels were developed as carriers of natural carotenoids and tailored for 3D printing applications. Bigels were prepared with agar-based hydrogels and carnauba wax-based oleogels at different hydrogel:oleogel (H:O) ratios (80,20, 60,40, 40,60, 20,80). Carotenoid-rich extracts from Arthrospira platensis and Scenedesmus obliquus were selected due to distinct profiles of carotenes and xanthophylls. The effects of H:O ratio and 3D printing on carotenoid digestive stability, micellization, and bioaccessibility were evaluated using an in vitro digestion model. Both H:O ratio and 3D printing significantly influenced carotenoid bioaccessibility, with responses strongly dependent on carotenoid composition and concentration. In A. platensis , micellar fractions contained both carotenes and xanthophylls, while S. obliquus extracts were dominated by xanthophylls (>90%). Within these complex extracts, xanthophyll-rich systems exhibited higher digestive stability, micellization efficiency, and bioaccessibility compared to carotene-rich systems. 3D printing modulated carotenoid digestive stability and micellization in a manner dependent on extract type and H:O ratio, resulting in a significant increase in final bioaccessibility of up to 12%, particularly in 80:20 bigels. Overall, bigels combined with 3D printing demonstrated strong potential as delivery systems for natural carotenoid extracts. • Bigel systems enhanced the bioaccessibility of natural, complex carotenoid extracts. • Bigels increased carotenoid bioaccessibility compared to oleogels (up to 40%). • Hydrogel:oleogel ratio modulated carotenoid micellization and bioaccessibility. • Extract composition influenced carotenoid response to bigel microstructure. • 3D printing altered bigel microstructure and impacted carotenoid digestion.

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Cite This Study

Fernandes et al. (2026) studied this question.

synapsesocial.com/papers/699e90eff5123be5ed04e29dhttps://doi.org/10.1016/j.foodchem.2026.148579
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