Research progress of self-assembled nanogel and hybrid hydrogel systems based on pullulan derivatives

普鲁兰 纳米凝胶 材料科学 自愈水凝胶 纳米技术 自组装 高分子科学 化学工程 药物输送 高分子化学 有机化学 多糖 化学 工程类
作者
Tao Zhang,Ruyi Yang,Shengnan Yang,Jibin Guan,Dong Zhang,Yan Ma,Hongzhuo Liu
出处
期刊:Drug Delivery [Taylor & Francis]
卷期号:25 (1): 278-292 被引量:70
标识
DOI:10.1080/10717544.2018.1425776
摘要

Polymer nano-sized hydrogels (nanogels) as drug delivery carriers have been investigated over the last few decades. Pullulan, a nontoxic and nonimmunogenic hydrophilic polysaccharide derived from fermentation of black yeast like Aureobasidium pullulans with great biocompatibility and biodegradability, is one of the most attractive carriers for drug delivery systems. In this review, we describe the preparation, characterization, and 'switch-on/off' mechanism of typical pullulan self-assembled nanogels (self-nanogels), and then introduce the development of hybrid hydrogels that are numerous resources applied for regenerative medicine. A major section is used for biomedical applications of different nanogel systems based on modified pullulan, which exert smart stimuli-responses at ambient conditions such as charge, pH, temperature, light, and redox. Pullulan self-nanogels have found increasingly extensive application in protein delivery, tissue engineering, vaccine development, cancer therapy, and biological imaging. Functional groups are incorporated into self-nanogels and contribute to expressing desirable results such as targeting and modified release. Various molecules, especially insoluble or unstable drugs and encapsulated proteins, present improved solubility and bioavailability as well as reduced side effects when incorporated into self-nanogels. Finally, the advantages and disadvantages of pullulan self-nanogels will be analyzed accordingly, and the development of pullulan nanogel systems will be reviewed.
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