化学
丝状体
入侵足纲
细胞生物学
下调和上调
肿瘤微环境
转移
聚束蛋白
癌症研究
肌动蛋白
糖酵解
氧化磷酸化
黑色素瘤
酶
生物化学
氧化应激
催化作用
生物物理学
循环肿瘤细胞
癌细胞
基质金属蛋白酶
活性氧
细胞毒性
氮氧化物4
信号转导
作者
Peiying Zhang,Huajun Li,Yisen Wang,Jie Xiang,Lei Fan,Shengzhe Zhang,Lizeng Gao,Hua Dai,Juqun Xi
标识
DOI:10.1002/advs.202512186
摘要
Abstract Fascin, an actin‐bundling protein universally upregulated in metastatic tumors, drives tumor migration and invasion by promoting filopodia and invadopodia formation, establishing it as a pivotal therapeutic target. Herein, copper‐paeonol nanozymes (CuPaeNs) is engineered through metal‐phenolic complexation, mimicking natural enzyme metal‐coordination microenvironments to confer peroxidase‐like activity. This enzymatic capability drives the conversion of tumor‐associated H 2 O 2 into cytotoxic hydroxyl radicals, inducing oxidative damage in malignant cells. Notably, beyond inducing tumor catalytic therapy via targeted ROS generation, CuPaeNs directly disrupted the actin‐bundling activity of fascin, as evidenced by molecular docking, isothermal titration calorimetry, co‐immunoprecipitation, and immunofluorescence assays. Transcriptomic and biochemical analyses further revealed that CuPaeNs suppressed melanoma glycolysis by blocking the fascin‐YAP1‐PFKFB3 signaling axis. This study establishes metal‐phenolic nanozymes as a dual‐functional strategy that simultaneously triggers ROS overproduction to amplify tumor oxidative stress and disrupts fascin‐mediated metastasis, thereby modulating tumor metabolic reprogramming. This coordinated intervention establishes a novel treatment framework for malignancies characterized by fascin overexpression.
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