Division of Food Science and Technology, Sher-e-Kashmir University of Agricultural Sciences and Technology, Kashmir, Jammu and Kashmir 190025, India.
Division of Food Science and Technology, Sher-e-Kashmir University of Agricultural Sciences and Technology, Kashmir, Jammu and Kashmir 190025, India.
Int J Biol Macromol. 2024 Oct;278(Pt 3):134894. doi: 10.1016/j.ijbiomac.2024.134894. Epub 2024 Aug 20.
Vitamin D encapsulation can significantly improve its bioavailability, stability, and solubility. Various biopolymers viz. whey protein isolate, carboxymethyl cellulose, alginate and gum arabic were studied for their potential to be used as wall material and gum arabic was selected for encapsulating vitamin D3 as it possesses lesser particle size, apparent viscosity and better stability in terms of zeta potential. Box Behnken design was employed for optimizing the process conditions for developing vitamin D3 nanoemulsion. Box Behnken design was constructed using ultrasonic amplitude, sonication time and vitamin D3/wall material percent as independent factors. The optimum conditions obtained were ultrasonic amplitude (80 %), sonication time (12 min) and vitamin D3/wall material percent (5). The designed nanoemulsion showed a particle size of 20.04 nm, zeta potential of -28.2 mV, and encapsulation efficiency of 71.9 %. Chemical interactions were observed in the developed nanoemulsion as demonstrated by Differential scanning calorimeter thermograms and Fourier transform infrared spectra of the nanoemulsion. The Korsmeyer-Peppas model was the most suitable for describing the release of vitamin D3 from the nanoemulsion. Fabricated nanoemulsion has the potential to be used in food and pharmaceutical industries.
维生素 D 的包封可以显著提高其生物利用度、稳定性和溶解度。各种生物聚合物,如乳清蛋白分离物、羧甲基纤维素、藻酸盐和阿拉伯胶,被研究用作壁材,而阿拉伯胶被选为维生素 D3 的包封材料,因为它具有更小的粒径、表观粘度和更好的稳定性,表现在 ζ 电位方面。采用 Box-Behnken 设计优化了开发维生素 D3 纳米乳的工艺条件。Box-Behnken 设计使用超声幅度、超声时间和维生素 D3/壁材百分比作为独立因素构建。得到的最佳条件是超声幅度(80%)、超声时间(12 分钟)和维生素 D3/壁材百分比(5)。设计的纳米乳粒径为 20.04nm,ζ 电位为-28.2mV,包封效率为 71.9%。如纳米乳的差示扫描量热法热图谱和傅里叶变换红外光谱所示,观察到了纳米乳中存在化学相互作用。Korsmeyer-Peppas 模型最适合描述纳米乳中维生素 D3 的释放。所制备的纳米乳有可能用于食品和制药行业。