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近年来微藻包埋技术在生物医学中的应用进展。

Recent advances in microalgae encapsulation techniques for biomedical applications.

机构信息

BRIDGES - Biotechnology Research, Innovation, and Design of Health Products, Polytechnic of Guarda, Av. Dr. Francisco Sá Carneiro, 50, 6300-559 Guarda, Portugal.

BRIDGES - Biotechnology Research, Innovation, and Design of Health Products, Polytechnic of Guarda, Av. Dr. Francisco Sá Carneiro, 50, 6300-559 Guarda, Portugal.

出版信息

Adv Colloid Interface Sci. 2024 Nov;333:103297. doi: 10.1016/j.cis.2024.103297. Epub 2024 Aug 30.

DOI:10.1016/j.cis.2024.103297
PMID:39226799
Abstract

Microalgae are microorganisms that are rich in bioactive compounds, including pigments, proteins, lipids, and polysaccharides. These compounds can be utilized for a number of biomedical purposes, including drug delivery, wound healing, and tissue engineering. Nevertheless, encapsulating microalgae cells and microalgae bioactive metabolites is vital to protect them and prevent premature degradation. This also enables the development of intelligent controlled release strategies for the bioactive compounds. This review outlines the most employed encapsulation techniques for microalgae, with a particular focus on their biomedical applications. These include ionic gelation, oil-in-water emulsions, and spray drying. Such techniques have been widely explored, due to their ability to protect sensitive compounds from degradation, enhance their stability, extend their shelf life, mask undesirable tastes or odours, control the release of bioactive compounds, and enable targeted delivery to specific sites within the body or environment. Moreover, a patent landscape analysis is also provided, allowing an overview of the microalgae encapsulation technology development applied to a variety of fields, including pharmaceuticals, cosmetics, food, and agriculture.

摘要

微藻是一种富含生物活性化合物的微生物,包括色素、蛋白质、脂质和多糖。这些化合物可用于多种生物医学用途,包括药物传递、伤口愈合和组织工程。然而,封装微藻细胞和微藻生物活性代谢物对于保护它们并防止过早降解至关重要。这也使生物活性化合物的智能控制释放策略的发展成为可能。本综述概述了最常用的微藻封装技术,特别关注它们的生物医学应用。这些技术包括离子凝胶化、油包水乳液和喷雾干燥。由于这些技术能够保护敏感化合物免受降解、提高其稳定性、延长其保质期、掩盖不良味道或气味、控制生物活性化合物的释放以及实现对体内或环境中特定部位的靶向递送,因此它们得到了广泛的探索。此外,还提供了专利景观分析,使人们能够概览应用于制药、化妆品、食品和农业等多种领域的微藻封装技术的发展。

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