趋化性
肿瘤微环境
癌症研究
免疫疗法
细胞外基质
肿瘤细胞
免疫系统
化学
药物输送
运动性
化疗
炎症
细胞培养
体内
细胞生物学
多细胞生物
细胞外
医学
细胞
生物物理学
靶向给药
细胞毒性
药品
转移
流式细胞术
生物
作者
Qinqin Ruan,Meng Mao,Qiang Zhang,Ling Yang,Yingjie Wu,Qiang He
出处
期刊:Small
[Wiley]
日期:2026-02-10
卷期号:22 (21): e09966-e09966
被引量:2
标识
DOI:10.1002/smll.202509966
摘要
We report a glucose oxidase/catalase-driven, tumor cell membrane-camouflaged flasklike pentosan nanobot (GC-M@FPNbot) to achieve targeted drug delivery in response to the characteristic concentration gradients within the tumor microenvironment (TME), thereby enhancing the efficacy of tumor chemotherapy. The doxorubicin-loaded GC-M@FPNbots, propelled by an enzymatic cascade reaction, exhibit a pronounced chemotactic behavior along proton and/or hydrogen peroxide concentration gradients. This chemotactic propulsion enables the nanobots to efficiently penetrate the extracellular matrix barrier and deeply infiltrate 3D multicellular tumor spheroids, thereby significantly improving tumor tissue permeation. In a murine tumor model, the directional motility of these nanobots enhances their tumor targeting delivery efficiency, achieving a 5.7-fold increase compared to passive flasklike pentosan particles. Furthermore, the GC-M@FPNbots exhibit an 80.8% tumor growth inhibition rate over 16 days, surpassing the 47.6% inhibition achieved by conventional chemotherapeutic agents. Such dual-enzymatic nanobots capable of TME-responsive directional movement mimicking the positively chemotactic behavior of immune cells hold the potential for personalized therapeutic strategies.
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