内吞作用
细胞内
渗透(战争)
谷胱甘肽
生物物理学
癌细胞
材料科学
纳米技术
纳米医学
内生
癌症治疗
活性氧
纳米载体
纳米颗粒
化学
细胞
生物化学
癌症
生物
工程类
遗传学
酶
运筹学
作者
Juanfeng Ou,Hao Tian,Juanyan Wu,Junbin Gao,Jiamiao Jiang,Kun Liu,Shuanghu Wang,Fei Wang,Fei Tong,Yicheng Ye,Lu Liu,Bin Chen,Xing Ma,Xuncai Chen,Fei Peng,Yingfeng Tu
标识
DOI:10.1021/acsami.1c08926
摘要
Chemodynamic therapy (CDT) is an emerging strategy for cancer treatment based on Fenton chemistry, which can convert endogenous H2O2 into toxic ·OH. However, the limited endocytosis of passive CDT nanoagents with low penetrating capability resulted in unsatisfactory anticancer efficacy. Herein, we propose the successful fabrication of a self-propelled biodegradable nanomotor system based on hollow MnO2 nanoparticles with catalytic activity for active Fenton-like Mn2+ delivery and enhanced CDT. Compared with the passive counterparts, the significantly improved penetration of nanomotors with enhanced diffusion is demonstrated in both the 2D cell culture system and 3D tumor multicellular spheroids. After the intracellular uptake of nanomotors, toxic Fenton-like Mn2+ is massively produced by consuming overexpressed intracellular glutathione (GSH), which has a strong scavenging effect on ·OH, thereby leading to enhanced cancer CDT. The as-developed MnO2-based nanomotor system with enhanced penetration and endogenous GSH scavenging capability shows much promise as a potential platform for cancer treatment in the near future.
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