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首页> 外文期刊>Food biophysics >Solid Lipid Nanoparticles as Delivery Systems for Bioactive Food Components
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Solid Lipid Nanoparticles as Delivery Systems for Bioactive Food Components

机译:固体脂质纳米颗粒作为生物活性食品成分的输送系统

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The inclusion of bioactive compounds, such as carotenoids, omega-3 fatty acids, or phytosterols, is an essential requisite for the production of functional foods designed to improve the long-term health and well-being of consumers worldwide. To incorporate these functional components successfully in a food system, structurally sophisticated encapsulation matrices have to be engineered, which provide maximal physical stability, protect ingredients against chemical degradation, and allow for precise control over the release of encapsulated components during mastication and digestion to maximize adsorption. A novel encapsulation system initially developed in the pharmaceutical industries to deliver lipophilic bioactive compounds is solid lipid nanoparticles (SLN). SLN consist of crystallized nanoemulsions with the dispersed phase being composed of a solid carrier lipid-bioactive ingredient mixture. Contrary to larger colloidal solid lipid particles, specific crystal structures can be "dialed-in" in SLN by using specific surfactant mixtures and ensuring that mean particle sizes are below 100-200 nm. Moreover, in SLN, microphase separations of the bioactive compound from the solidifying lipid matrix can be prevented resulting in an even dispersion of the encapsulated compound in the solid matrix thereby improving chemical and physical stability of the bioactive. In thisrnreview article, we will briefly introduce the structure, properties, stability, and manufacturing of solid lipid particles and discuss their emerging use in food science.
机译:包含生物活性化合物(例如类胡萝卜素,omega-3脂肪酸或植物甾醇)是生产旨在改善全球消费者长期健康和福祉的功能性食品的必要条件。为了将这些功能成分成功地整合到食品系统中,必须设计结构复杂的封装基质,以提供最大的物理稳定性,保护成分免受化学降解,并在咀嚼和消化过程中精确控制封装成分的释放,以最大程度地吸附。最初在制药工业中开发的用于递送亲脂性生物活性化合物的新型封装系统是固体脂质纳米颗粒(SLN)。 SLN由结晶的纳米乳组成,分散相由固体载体脂质-生物活性成分混合物组成。与较大的胶体固体脂质颗粒相反,通过使用特定的表面活性剂混合物并确保平均粒径在100-200 nm以下,可以在SLN中“插入”特定的晶体结构。而且,在SLN中,可以防止生物活性化合物与固化脂质基质的微相分离,从而导致包封的化合物均匀分散在固体基质中,从而改善了生物活性的化学和物理稳定性。在这篇综述文章中,我们将简要介绍固体脂质颗粒的结构,性质,稳定性和制造,并讨论它们在食品科学中的新兴用途。

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