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利用聚电解质稳定的纳米脂质体包封益生菌,以提高在恶劣条件下的存活率。

Encapsulation of probiotic bacteria using polyelectrolytes stabilized nanoliposomes for improved viability under hostile conditions.

机构信息

Food Safety and Biotechnology Laboratory, Department of Food Science, Government College University, Faisalabad, Pakistan.

Department of Nutritional Sciences, Government College University, Faisalabad, Pakistan.

出版信息

J Food Sci. 2023 Sep;88(9):3839-3848. doi: 10.1111/1750-3841.16709. Epub 2023 Aug 2.

DOI:10.1111/1750-3841.16709
PMID:37530623
Abstract

Probiotics viability and stability is a core challenge for the food processing industry. To prolong the viability of probiotics (Lactobacillus acidophilus), gelatin (GE)-chitosan (CH) polyelectrolytes-coated nanoliposomes were developed and characterized. The average particle size of the nanoliposomes was in the range of 131.7-431.6 nm. The mean zeta potential value of the nanoliposomes differed significantly from -42.2 to -9.1 mV. Scanning electron micrographs indicated that the nanoliposomes were well distributed and had a spherical shape with a smooth surface. The Fourier transform infrared spectra revealed that the GE-CH polyelectrolyte coating has been effectively applied on the surface of nanoliposomes and L. acidophilus cells were successfully encapsulated in the lipid-based nanocarriers. X-ray diffraction results indicated that nanoliposomes are semicrystalline and GE-CH polyelectrolyte coating had an influence on the crystalline nature of nanoliposomes. Moreover, the coating of L. acidophilus-loaded nanoliposomes with GE-CH polyelectrolytes significantly improved its viability when exposed to simulated gastrointestinal environments. The findings of the current study indicated that polyelectrolyte-coated nanoliposomes could be used as an effective carrier for the delivery of probiotics and their application to food matrix for manufacturing functional foods.

摘要

益生菌的生存能力和稳定性是食品加工行业面临的核心挑战。为了延长益生菌(嗜酸乳杆菌)的生存能力,开发并表征了明胶(GE)-壳聚糖(CH)聚电解质包覆的纳米脂质体。纳米脂质体的平均粒径在 131.7-431.6nm 范围内。纳米脂质体的平均 Zeta 电位值显著不同,范围为-42.2 至-9.1mV。扫描电子显微镜图像表明,纳米脂质体分布均匀,呈球形,表面光滑。傅里叶变换红外光谱表明,GE-CH 聚电解质涂层已成功应用于纳米脂质体表面,并且嗜酸乳杆菌细胞已成功包封在基于脂质的纳米载体中。X 射线衍射结果表明,纳米脂质体为半晶态,并且 GE-CH 聚电解质涂层对纳米脂质体的结晶性质有影响。此外,用 GE-CH 聚电解质对载有嗜酸乳杆菌的纳米脂质体进行包被显著提高了其在模拟胃肠道环境中的生存能力。本研究的结果表明,聚电解质包覆的纳米脂质体可用作益生菌传递的有效载体,并可将其应用于食品基质中制造功能性食品。

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