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采用酪蛋白和刺槐豆胶的复凝聚法制备微胶囊β-胡萝卜素的特性研究。

Characterization of microcapsulated β-carotene formed by complex coacervation using casein and gum tragacanth.

机构信息

Dr. S. S. Bhatnagar University Institute of Chemical Engineering & Technology, Panjab University, Chandigarh, India.

Dr. S. S. Bhatnagar University Institute of Chemical Engineering & Technology, Panjab University, Chandigarh, India.

出版信息

Int J Biol Macromol. 2016 Jun;87:101-13. doi: 10.1016/j.ijbiomac.2016.01.117. Epub 2016 Feb 2.

Abstract

Complex coacervation in casein/gum tragacanth (CAS/GT) mixtures was studied as a function of pH, initial protein to polysaccharide mixing ratio (Pr:Ps), total biopolymer concentration, core material load and ionic strength. This study is aimed at understanding how these parameters influence the coacervation kinetics, the coacervate yield, and entrapment efficiency. At a Pr:Ps=2:1, an optimum pH of complex coacervation was found 4.35, at which the intensity of electrostatic interaction was maximum. At these conditions, the phase separation occurred the fastest and the final coacervate yield and entrapment efficiency were the largest. Moreover, the developed β-carotene loaded microcapsules formulation was found to have particle size 159.71±2.16μm, coacervates yield 82.51±0.412%, entrapment efficiency 79.36±0.541%. Varying the Pr:Ps shifted the value of optimum pH. Electrostatic interaction and formation of coacervates was confirmed by Fourier Transform Infra Red (FTIR) spectra. Size and surface properties of coacervates were studied using Scanning Electron Microscopy (SEM). Entrapment of core material within the coacervates was confirmed by Confocal Laser Scanning Microscope (CLSM). The resultant formulation was evaluated for release study and antioxidant activity. Stability of encapsulated β-carotene was evaluated under three levels of temperature (5, 25 and 40°C) for 3 months. Encapsulation strongly increased the stability of micronutrients. Our results advocate potential of microcapsules as a novel carrier for the safeguard and sustained release of micronutrient.

摘要

在 pH 值、初始蛋白质与多糖混合比(Pr:Ps)、总生物聚合物浓度、核心材料负载和离子强度的条件下,研究了酪蛋白/黄蓍胶(CAS/GT)混合物中的复杂凝聚作用。本研究旨在了解这些参数如何影响凝聚动力学、凝聚物产率和包埋效率。在 Pr:Ps=2:1 的条件下,发现复杂凝聚的最佳 pH 值为 4.35,此时静电相互作用的强度最大。在这些条件下,相分离发生得最快,最终的凝聚物产率和包埋效率最大。此外,所开发的β-胡萝卜素负载微胶囊制剂的粒径为 159.71±2.16μm,凝聚物产率为 82.51±0.412%,包埋效率为 79.36±0.541%。改变 Pr:Ps 会改变最佳 pH 值。傅里叶变换红外(FTIR)光谱证实了静电相互作用和凝聚物的形成。使用扫描电子显微镜(SEM)研究了凝聚物的大小和表面性质。通过共聚焦激光扫描显微镜(CLSM)证实了芯材的包埋。对所得制剂进行了释放研究和抗氧化活性评价。在 5、25 和 40°C 三个温度水平下评估了封装β-胡萝卜素的稳定性,持续 3 个月。包封强烈增加了微量营养素的稳定性。我们的结果表明,微胶囊作为一种新型载体,具有保护和持续释放微量营养素的潜力。

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