Ahmadzadeh Safoura, Barekat Sorour, Ubeyitogullari Ali
Department of Food Science, University of Arkansas, Fayetteville, AR, 72704, USA.
Department of Biological and Agricultural Engineering, University of Arkansas, Fayetteville, AR, 72701, USA.
NPJ Sci Food. 2025 Jun 6;9(1):96. doi: 10.1038/s41538-025-00439-2.
This study investigated the use of 3D printing to co-encapsulate, protect, and enhance the bioaccessibility of lutein and anthocyanins. Coaxial extrusion 3D printing in a spiral-cube geometry was utilized with lutein-loaded zein as the core material and anthocyanins-loaded corn starch paste as the shell material. The research examined various printing conditions, including starch concentrations of 10% and 11%, and printing temperatures ranging from 45 °C to 85 °C. A comprehensive analysis of the inks' properties, such as printability, viscosity, microstructural characteristics, storage stability, and bioaccessibility of the encapsulated compounds, was conducted. Encapsulated lutein showed only a 29-55% degradation rate after 21 days at 25 °C, while 97% of crude lutein was degraded under the same conditions. Similarly, encapsulated anthocyanins had 42-55% degradation rates depending on the 3D printing conditions compared to 70% for crude anthocyanins. Furthermore, the bioaccessibilities of encapsulated lutein (9.8%) and anthocyanins (37.5%) were significantly higher compared to their crude counterparts (1.5% and 20.3%, respectively). This innovative 3D printing encapsulation system effectively enhances the chemical stability and bioaccessibility of these model bioactive compounds, presenting a promising method for their integration into food products.
本研究调查了使用3D打印技术对叶黄素和花青素进行共包封、保护并提高其生物可及性。采用螺旋立方体几何形状的同轴挤出3D打印技术,以负载叶黄素的玉米醇溶蛋白为核心材料,以负载花青素的玉米淀粉糊为外壳材料。该研究考察了各种打印条件,包括10%和11%的淀粉浓度以及45 °C至85 °C的打印温度。对油墨的性能进行了全面分析,如可印刷性、粘度、微观结构特征、储存稳定性以及包封化合物的生物可及性。在25 °C下放置21天后,包封的叶黄素降解率仅为29 - 55%,而在相同条件下,粗品叶黄素的降解率为97%。同样,根据3D打印条件,包封的花青素降解率为42 - 55%,而粗品花青素的降解率为70%。此外,包封的叶黄素(9.8%)和花青素(37.5%)的生物可及性明显高于其粗品(分别为1.5%和20.3%)。这种创新的3D打印包封系统有效地提高了这些模型生物活性化合物的化学稳定性和生物可及性,为将它们整合到食品中提供了一种有前景的方法。