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Core-Shell Biopolymer Nanoparticles for Co-Delivery of Curcumin and Piperine: Sequential Electrostatic Deposition of Hyaluronic Acid and Chitosan Shells on the Zein Core

机译:用于共聚姜黄素和哌啶的核 - 壳生物聚合物纳米颗粒:透明质酸和壳聚糖壳对玉米蛋白核心的顺序静电沉积

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摘要

Curcumin and piperine are natural nutraceuticals that exhibit synergistic biological activities, but have different polarities, which can make their encapsulation within a single delivery system challenging. In this study, the two bioactive components were encapsulated within core-shell nanoparticles formed by a combination of antisolvent precipitation and layer-by-layer deposition. Initially, strongly hydrophobic curcumin (log P = 4.12) was embedded in the hydrophobic core of zein-hyaluronic acid nanoparticles using the antisolvent precipitation method. Then, the weakly hydrophobic piperine (log P = 2.78) was adsorbed to the outer biopolymer shell of these nanoparticles. Finally, the nutraceutical-loaded particles were coated with a layer of chitosan by the electrostatic deposition method. The surface charge and coating thickness depended on the number of adsorbed layers and the nature of the outer layer, being negative for hyaluronic acid and positive for chitosan. Low-, medium-, and high-molecular weight chitosan were utilized to modify the surface properties. Chitosan with a low-molecular weight was selected to fabricate the core-shell nanoparticles because it produced small highly charged cationic particles (d = 599 nm; zeta = +38.1 mV). The encapsulation efficiency and loading capacities were 90.4 and 5.7% for curcumin, and 86.4 and 5.4% for piperine, respectively. The core-shell nanoparticles protected the nutraceuticals from chemical degradation during light exposure, thermal processing, and storage for 2 months. Moreover, the nanoparticles were able to control the release of the bioactive components in simulated gastrointestinal conditions. Our results should facilitate the development of more effective nanodelivery systems for nutraceuticals that exhibit synergistic activities, but have different molecular characteristics.
机译:姜黄素和哌啶是天然营养保健品,其表现出协同生物活性,但具有不同的极性,可以在单一递送系统挑战内进行封装。在该研究中,将两种生物活性组分包封在通过抗溶解沉淀和逐层沉积的组合形成的核 - 壳纳米颗粒内。最初,使用抗溶剂沉淀法将强烈疏水的姜黄素(LOG P = 4.12)嵌入ZEIN-透明质酸纳米粒子的疏水核中。然后,将弱疏水的哌啶(Log P = 2.78)吸附到这些纳米颗粒的外生物聚合物壳中。最后,通过静电沉积法用一层壳聚糖涂覆营养负载颗粒。表面电荷和涂层厚度依赖于吸附层的数量和外层的性质,对于透明质酸和壳聚糖阳性是阴性的。利用低,中等和高分子量壳聚糖来改变表面性质。选择具有低分子量的壳聚糖以制造核 - 壳纳米颗粒,因为它产生小的带电阳离子颗粒(D = 599nm; Zeta = + 38.1mV)。姜黄素的浸渍效率和装载能力分别为姜黄素的90.4和5.7%,哌啶的86.4和5.4%。核 - 壳纳米颗粒在光暴露,热处理和储存期间保护了从化学降解的营养制品2个月。此外,纳米颗粒能够控制模拟胃肠环境中的生物活性组分的释放。我们的结果应促进开发更有效的纳多交货系统,用于营养营养素,表现出协同活动,但具有不同的分子特征。

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