超分子化学
聚乙二醇
材料科学
酶
人工酶
生物物理学
组合化学
药物输送
两亲性
纳米技术
膜
脂质体
纳米载体
生物化学
化学
有机化学
聚合物
共聚物
生物
晶体结构
作者
Jing Gu,Yongjia Huang,Zijun Yan,Dan He,Yonghong Zhang,Jingyu Xu,Yao Li,Xuemei Xie,Jiaxi Xie,Da Shi,Ruben Abagyan,Jingqing Zhang,Qunyou Tan
标识
DOI:10.1021/acsami.0c06207
摘要
Platforms for enzyme delivery must simultaneously have plasma stability, high catalytic activity, and low/no immunogenicity of the enzyme. Here, we designed a novel biomimetic membrane-structured nanovesicle (BNV) to efficiently carry supramolecular enzymes to meet the above requirements. We complexed l-asparaginase (Aase) with hydroxypropyl-β-cyclodextrin (HPCD) to form a supramolecular amphiphile (AS) by self-assembly via noncovalent reversible interactions. We then used the first synthesized polyethylene glycol (PEG 2 kDa)-decorated hyaluronan (12 kDa) and HPCD to self-assemble a semipermeable biomimetic membrane-structured nanovesicle (BNV) together with AS loading. As compared to native Aase, AS@BNV exhibited superior catalytic activity preservation, improved catalytic activity, better pharmacokinetics in rats, enhanced cytotoxic effects, increased antitumor efficacy, and decreased side effects. The underlying mechanisms, such as the autophagy inhibition action against tumor cells, protein–protein docking of the interaction between Aase–serum albumin, and decreased hepatic enzymatic activity, were investigated. This approach paves the way for new types of powerful biomimetic-, supramolecular-, and nanocarrier-based enzymatic therapies.
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