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制备一种铁蛋白-酪蛋白磷酸肽-钙壳核复合材料作为一种新型的钙递药策略。

Fabrication of a ferritin-casein phosphopeptide-calcium shell-core composite as a novel calcium delivery strategy.

机构信息

State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science & Technology, Tianjin, 300457, China.

Key Laboratory of Cosmetic, China National Light Industry, Beijing Technology and Business University, Beijing, 100048, China.

出版信息

Food Funct. 2021 Nov 15;12(22):11378-11386. doi: 10.1039/d1fo02134f.

Abstract

Plant ferritin has a natural cage-like nanospace for carrying bioactive ingredients. By taking advantage of the calcium binding ability of casein phosphopeptide (CPP) and the cage-like conformation of plant ferritin, a ferritin-CPP shell-core complex (FC) was fabricated with the reversible self-assembly character of ferritin induced by a pH 2.0/7.0 transition strategy. The FC-calcium composite (FCC) was further fabricated by binding of the FC with calcium ions. When the same amount of calcium was loaded, the calcium binding capacity of the FCC was 28.13 ± 1.65%, which was significantly higher than that of ferritin and CPP alone. Fluorescence and Fourier transform infrared analysis indicated that the CPP encapsulation and the calcium binding in the FCC influenced the ferritin structure. Transmission electron microscopy (TEM) and dynamic light scattering (DLS) results showed that the spherical morphology and the 12 nm-diameter size were sustained in the FC and FCC. Moreover, the FCC as a transport carrier could increase the precipitation time of calcium phosphate, and the encapsulated calcium could be released in a more sustained manner as compared with ferritin and CPP under simulated gastrointestinal conditions. This study presents a novel calcium delivery strategy based on the ferritin cage and CPP, which will improve the applicability of ferritin and CPP and enhance the bioavailability of calcium ions.

摘要

植物铁蛋白具有天然的笼状纳米空间,可用于携带生物活性成分。利用酪蛋白磷酸肽(CPP)的钙结合能力和植物铁蛋白的笼状构象,采用 pH 2.0/7.0 转换策略诱导铁蛋白的可逆自组装特性,制备了铁蛋白-CPP 核壳复合物(FC)。通过 FC 与钙离子的结合,进一步制备了 FC-钙复合物(FCC)。当负载相同量的钙时,FCC 的钙结合能力为 28.13±1.65%,明显高于铁蛋白和 CPP 单独的钙结合能力。荧光和傅里叶变换红外分析表明,CPP 的包封和 FCC 中的钙结合影响了铁蛋白的结构。透射电子显微镜(TEM)和动态光散射(DLS)结果表明,FC 和 FCC 均保持了球形形态和 12nm 直径大小。此外,作为输送载体的 FCC 可以增加磷酸钙的沉淀时间,并且与铁蛋白和 CPP 相比,在模拟胃肠道条件下,封装的钙可以更持续地释放。本研究提出了一种基于铁蛋白笼和 CPP 的新型钙输送策略,这将提高铁蛋白和 CPP 的适用性,并增强钙离子的生物利用度。

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