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口服细胞靶向递药系统构建的可食用材料:优势与挑战。

Oral Cell-Targeted Delivery Systems Constructed of Edible Materials: Advantages and Challenges.

机构信息

College of Food Science and Engineering, Ocean University of China, Qingdao 266003, China.

Laboratory of Marine Drugs and Biological Products, Pilot National Laboratory for Marine Science and Technology, Qingdao 266237, China.

出版信息

Molecules. 2022 Nov 17;27(22):7991. doi: 10.3390/molecules27227991.

Abstract

Cell-targeted delivery is an advanced strategy which can effectively solve health problems. However, the presence of synthetic materials in delivery systems may trigger side effects. Therefore, it is necessary to develop cell-targeted delivery systems with excellent biosafety. Edible materials not only exhibit biosafety, but also can be used to construct cell-targeted delivery systems such as ligands, carriers, and nutraceuticals. Moreover, oral administration is the appropriate route for cell-targeted delivery systems constructed of edible materials (CDSEMs), which is the same as the pattern of food intake, resulting in good patient compliance. In this review, relevant studies of oral CDSEMs are collected to summarize the construction method, action mechanism, and health impact. The gastrointestinal stability of delivery systems can be improved by anti-digestible materials. The design of the surface structure, shape, and size of carrier is beneficial to overcoming the mucosal barrier. Additionally, some edible materials show dual functions of a ligand and carrier, which is conductive to simplifying the design of CDSEMs. This review can provide a better understanding and prospect for oral CDSEMs and promote their application in the health field.

摘要

细胞靶向递药是一种先进的策略,可以有效地解决健康问题。然而,递药系统中合成材料的存在可能会引发副作用。因此,有必要开发具有优异生物安全性的细胞靶向递药系统。食用材料不仅表现出生物安全性,还可以用于构建细胞靶向递药系统,如配体、载体和营养保健品。此外,口服是构建食用材料细胞靶向递药系统(CDSEMs)的合适途径,与食物摄入的模式相同,从而提高患者的顺应性。本综述收集了相关的口服 CDSEMs 研究,总结了其构建方法、作用机制和健康影响。抗消化材料可以提高递药系统的胃肠道稳定性。载体表面结构、形状和尺寸的设计有利于克服黏膜屏障。此外,一些食用材料具有配体和载体的双重功能,有利于简化 CDSEMs 的设计。本综述可以为口服 CDSEMs 提供更好的理解和展望,并促进其在健康领域的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b241/9697699/e8352e7b411d/molecules-27-07991-g001.jpg

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