活性氧
过氧化氢
激进的
葡萄糖氧化酶
过氧化物酶
渗透(战争)
催化作用
材料科学
生物物理学
化学
氧气
肿瘤缺氧
组合化学
光化学
生物化学
酶
有机化学
放射治疗
生物
工程类
内科学
医学
运筹学
作者
Xinping Liu,Zhengwei Liu,Kai Dong,Si Wu,Yanjuan Sang,Tingting Cui,Ya Zhou,Jinsong Ren,Xiaogang Qu
出处
期刊:Biomaterials
[Elsevier]
日期:2020-07-30
卷期号:258: 120263-120263
被引量:55
标识
DOI:10.1016/j.biomaterials.2020.120263
摘要
Tumor-activatable ultrasmall nanozyme generation is an unprecedented strategy to overcome intrinsically fatal defects of traditional reactive oxygen species (ROS)-based nanoagents for deep tumor penetration, including limited tissue-penetrating depth of external energy, heavy reliance on oxygen and nonspecific toxicity of therapeutic agents. Here, based on the cascade reaction between glucose oxidase (GOx) and ultrasmall peroxidase nanozyme embedded into acid-dissociable zeolitic imidazolate framework-8 (ZIF-8), such a tumor-activatable ultrasmall nanozyme generator is designed for enhanced penetration and deep catalytic therapy. With the aid of mildly acidic tumor microenvironment, the produced gluconic acid from intratumoral glucose can gradually induce the dissociation of ZIF-8 to release ultrasmall peroxidase nanozyme with significant intratumoral penetration. On the other hand, the generated hydrogen peroxide with relatively long-life can be subsequently catalyzed by penetrated peroxidase nanozyme into toxic hydroxyl radicals for deep catalytic therapy. In this way, the well-designed nanoplatform not only can greatly enhance tumor penetration but also directly induce exogenous ROS without oxygen participation and external energy input, thereby thoroughly avoiding the inactivation of traditional ROS-based nanoagents in the extremely hypoxic tumor center and finally resulting in remarkable deep catalytic therapy.
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