Janus Nanozyme With Programmable Catalytic Switching for Adaptive Therapy of Diabetic Wounds

X Xuelian Wei (Vera Therapeutics, Brisbane, CA) Z Zhengxiang Gu (College of Materials and Chemistry and Chemical Engineering Chengdu University of Technology Chengdu China) Y Yange Luan (Department of Clinical Laboratory Medicine, Southwest Hospital Third Military Medical University (Army Medical University) Chongqing China) Y Yongchao Wang Y Yinggang Li (Department of Radiology, Department of Pathology, Institution of Radiology and Medical Imaging, Huaxi MR Research Center (HMRRC), and Institute of Clinical Pathology, Frontiers Science Center for Disease‐Related Molecular Network, National Clinical Research Center for Geriatrics, State Key Laboratory of Biotherapy West China Hospital Sichuan University Chengdu China) Z Zengxi Wei (Guangxi Key Laboratory of Petrochemical Resource Processing and Process Intensification Technology and School of Chemistry and Chemical Engineering, Guangxi University) D Dan Jiang F Feng Ye Q Qiyong Gong (Department of Radiology, Huaxi MR Research Center, Institute of Radiology and Medical Imaging, West China Hospital of Sichuan University) K Kui Luo

Abstract

ABSTRACT Diabetic wound healing requires dynamic bidirectional regulation of reactive oxygen species (ROS). Herein, guided by density functional theory (DFT) calculations, we propose a programmable strategy to engineer catalytic pathways via an intimate heterointerface in Janus‐structured Cu‐Ag nanoparticles (CuAg‐J). Theoretical simulations reveal that the unique Cu‐Ag heterointerface induces a charge transfer to oxygen intermediates, enabling spontaneous formation of reactive species and pH‑switchable catalytic activity. Under acidic conditions, CuAg‐J exhibits peroxidase (POD)‐like activity ( K m  = 0.19 mM, V max  = 0.38 µM/s) for antibacterial ROS generation. Under neutral conditions, it displays superoxide dismutase (SOD)‐like and catalase (CAT)‐like activities ( K m  = 9.48 mM, V max  = 6.88 µM/s) for ROS scavenging and oxygen production. In an infected diabetic wound model, this bidirectional ROS regulation effectively breaks the oxidative stress–hypoxia–inflammation vicious cycle, significantly accelerating healing and achieving 92.04% wound closure by Day 14. This study not only presents a high‐performance nanozyme but also provides a new design rationale for engineering intelligent catalytic materials capable of autonomous function switching in response to dynamic microenvironmental conditions.

Article Details

Volume / Issue Vol. 1, Issue 1
Published August 17, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

X

Xuelian Wei

Vera Therapeutics, Brisbane, CA

Z

Zhengxiang Gu

College of Materials and Chemistry and Chemical Engineering Chengdu University of Technology Chengdu China

Y

Yange Luan

Department of Clinical Laboratory Medicine, Southwest Hospital Third Military Medical University (Army Medical University) Chongqing China

Y

Yongchao Wang

Y

Yinggang Li

Department of Radiology, Department of Pathology, Institution of Radiology and Medical Imaging, Huaxi MR Research Center (HMRRC), and Institute of Clinical Pathology, Frontiers Science Center for Disease‐Related Molecular Network, National Clinical Research Center for Geriatrics, State Key Laboratory of Biotherapy West China Hospital Sichuan University Chengdu China

Z

Zengxi Wei

Guangxi Key Laboratory of Petrochemical Resource Processing and Process Intensification Technology and School of Chemistry and Chemical Engineering, Guangxi University

D

Dan Jiang

F

Feng Ye

Q

Qiyong Gong

Department of Radiology, Huaxi MR Research Center, Institute of Radiology and Medical Imaging, West China Hospital of Sichuan University

K

Kui Luo