Mechanically Regulated Nanozymes for Remote Metabolic Reprogramming and Precise Cancer Therapy

F Fangman Chen (Cancer Centre and Institute of Translational Medicine, Faculty of Health Sciences) X Xiaochun Xie (School of Medicine) H Hanyao Huang K Ka Hong Wong (State Key Laboratory of Quality Research in Chinese Medicine, Institute of Chinese Medical Sciences University of Macau Macau SAR China) J Jiying Liu H Hui Fang S Shaowen Wang (School of Medicine) J Jianfang Cao (State Key Laboratory of Fine Chemicals, School of Chemical Engineering) Y Yu Tao M Mingqiang Li (State Key Laboratory of Synergistic Chem-Bio Synthesis, State Key Laboratory of Micro-Nano Engineering Science, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study, and National Center for Translational Medicine) C Chao Yang W Wen Sun (State Key Laboratory of Fine Chemicals, School of Chemical Engineering) D Dan Shao (School of Medicine) Y Yunlu Dai

Abstract

ABSTRACT Mechanoenzymes, featuring catalytic activity controlled by mechanical stimuli, play key roles in maintaining metabolic order and cellular homeostasis. However, artificial nanozymes with strict spatiotemporal regulation are still rare, limiting their effectiveness in complex biological environments. Here, we introduce a mechanically regulated nanozyme (MRNZ) by integrating mechano‐responsive ferrocene (Fc) units into a flexible framework. Similar to natural enzymatic activation, acoustic shear forces cause sub‐nanostructural transformations of Fc units, leading to decreased electron density and reduced steric hindrance at Fe active sites, reinforcing metabolic peroxidase (POD)‐like activity. This mechanical activation enables precise modulation of metabolic reprogramming by controlled generation of low‐dose hydroxyl radicals (•OH) as second messengers, improving stem cells resilience to oxidative stress for safer and more effective therapeutic interventions. Using this mechanically regulated method, we encapsulated glucose oxidase (GOx) inside hollow MRNZ to create a multienzyme regulated nanoreactor (MRNZ@GOx) that orchestrates a cascade GOx‐POD reaction under ultrasound stimulation. Such a cascade reactive oxygen species generation in tumor microenvironments potentiates chemodynamic therapy combined with immune activation. Our work introduces a mechanically responsive strategy for regulating nanozyme activity, expanding the horizons of next‐generation remote and smart catalytic technologies for precise disease treatments.

Article Details

Volume / Issue Vol. 65, Issue 30
Published July 20, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

F

Fangman Chen

Cancer Centre and Institute of Translational Medicine, Faculty of Health Sciences

X

Xiaochun Xie

School of Medicine

H

Hanyao Huang

K

Ka Hong Wong

State Key Laboratory of Quality Research in Chinese Medicine, Institute of Chinese Medical Sciences University of Macau Macau SAR China

J

Jiying Liu

H

Hui Fang

S

Shaowen Wang

School of Medicine

J

Jianfang Cao

State Key Laboratory of Fine Chemicals, School of Chemical Engineering

Y

Yu Tao

M

Mingqiang Li

State Key Laboratory of Synergistic Chem-Bio Synthesis, State Key Laboratory of Micro-Nano Engineering Science, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhangjiang Institute for Advanced Study, and National Center for Translational Medicine

C

Chao Yang

W

Wen Sun

State Key Laboratory of Fine Chemicals, School of Chemical Engineering

D

Dan Shao

School of Medicine

Y

Yunlu Dai