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两种疏水分子的亲水共组装提高了水飞蓟宾的生物利用度。

Hydrophilic co-assemblies of two hydrophobic biomolecules improving the bioavailability of silybin.

机构信息

Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education; National Engineering Laboratory for Cereal Fermentation Technology; Jiangsu Provincial Research Centre for Bioactive Product Processing Technology; and School of Food Science and Technology, Jiangnan University, Wuxi 214122, China.

出版信息

Food Funct. 2020 Dec 1;11(12):10828-10838. doi: 10.1039/d0fo01882a. Epub 2020 Nov 25.

Abstract

Benefitting from the versatility and biocompatibility of food sourced materials, the construction of hybrid structures via their molecular interplay generates novel platforms with unexpected properties. In this work, two hydrophobic biomolecules were co-assembled into water-soluble amphiphiles at pH 7 by a facile pH-cycle approach. Wheat gluten proteins (WPs) and shellac were dissolved together at pH 12 followed by a one-step adjustment to pH 7, yielding nanospheres with a protein recovery over 90%. Structural characterization evidenced that shellac stiffened the protein backbones that were resistant against thermodynamically-favored folding. The reactions were proven to be initiated between the protein secondary structures and shellac, forming a relatively unfolded three-dimensional conformation during the acid-induced co-assembly. Silybin was employed as a hydrophobic bioactive model and was entrapped following the same procedure as the hybrid assembly, with a maximum loading of 102 mg g hybrid. The bioavailability of silybin loaded in shellac-WP co-assemblies was improved as assessed by cell proliferation assays, due to the improved dispersity and cell internalization of the co-assemblies. The preparation method based on a simple pH manipulation may be applied to encapsulate various hydrophobic bioactive compounds, apart from the silybin explored in this study.

摘要

得益于食品来源材料的多功能性和生物相容性,通过它们的分子相互作用构建杂化结构会产生具有意想不到性质的新型平台。在这项工作中,通过一种简单的 pH 循环方法,将两种疏水分子生物在 pH 7 下共组装成水溶性两亲分子。谷朊蛋白(WP)和紫胶在 pH 12 下溶解在一起,然后一步调整至 pH 7,得到蛋白回收率超过 90%的纳米球。结构表征表明,紫胶使蛋白质骨架变硬,抵抗热力学有利的折叠。反应被证明是在蛋白质二级结构和紫胶之间引发的,在酸诱导共组装过程中形成相对无规的三维构象。水飞蓟宾被用作疏水性生物活性模型,并按照与杂化组装相同的程序进行包封,杂化组装的最大载药量为 102mg g 杂化。通过细胞增殖试验评估,水飞蓟宾负载在紫胶-WP 共组装体中的生物利用度得到了提高,这是由于共组装体的分散性和细胞内化得到了改善。除了本研究中探索的水飞蓟宾外,基于简单 pH 处理的制备方法可用于封装各种疏水性生物活性化合物。

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