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叶黄素包封甜菊糖苷生物利用度及其机制的研究。

Study on the bioavailability of stevioside-encapsulized lutein and its mechanism.

机构信息

Institute of Agro-product Processing, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China.

Institute of Agro-product Processing, Jiangsu Academy of Agricultural Sciences, Nanjing 210014, China.

出版信息

Food Chem. 2021 Aug 30;354:129528. doi: 10.1016/j.foodchem.2021.129528. Epub 2021 Mar 10.

Abstract

This study aims to develop novel lutein nanoparticles encapsulized by stevioside (LUT-STE, 165 ± 2 nm average particles size) and systematically evaluate its bioavailability. Multiple spectroscopy and NMR analyses showed lutein and stevioside could interact through hydrogen bonds, CHπ interaction and van der Waals forces. Molecular docking simulation showed lutein was well distributed in the hydrophobic cavity of stevioside. Analyzed by Caco-2 cellular models, the transported amount of LUT-STE was 2.39 times that of lutein in 120 min with a P (B → A)/P (A → B) value of 0.63 ± 0.04. Nystatin and dynasore significantly reduced the cellular uptake of LUT-STE by 41.3% and 57.7%, respectively. Compared with free lutein, LUT-STE increased the C in mice plasma by 5.01-fold and promoted the accumulation in multiple organs. LUT-STE promoted the protein expressions of CD36, NPC1L1 and PPARγ in both cell and animal models. In conclusion, stevioside entrapment significantly promote the bioavailability of lutein through multiple transmembrane pathways.

摘要

本研究旨在开发新型叶黄素纳米粒,由甜菊糖苷(LUT-STE,平均粒径 165±2nm)包封,并系统评价其生物利用度。多种光谱和 NMR 分析表明,叶黄素和甜菊糖苷可通过氢键、CHπ相互作用和范德华力相互作用。分子对接模拟表明,叶黄素在甜菊糖苷的疏水腔内分布良好。通过 Caco-2 细胞模型分析,LUT-STE 在 120 分钟内的转运量是叶黄素的 2.39 倍,P(B→A)/P(A→B)值为 0.63±0.04。制霉菌素和 dynasore 分别显著降低了 LUT-STE 的细胞摄取率 41.3%和 57.7%。与游离叶黄素相比,LUT-STE 使小鼠血浆中的 C 增加了 5.01 倍,并促进了在多个器官中的积累。LUT-STE 在细胞和动物模型中均促进了 CD36、NPC1L1 和 PPARγ 的蛋白表达。总之,甜菊糖苷包封通过多种跨膜途径显著提高了叶黄素的生物利用度。

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