Nanozyme‐Reinforced Hydrogel Spray as a Reactive Oxygen Species‐Driven Oxygenator to Accelerate Diabetic Wound Healing

H Hao Li S Shuzhen Wei Q Qiangjun Ling (School of Biomedical Sciences and Engineering, Guangzhou International Campus) R Ruinan Wang (Department of Building Environment and Energy Engineering Research Institute for Sustainable Urban Development (RISUD) and Research Institute For Smart Energy (RISE) The Hong Kong Polytechnic University Kowloon Hong Kong SAR China) T Tuozhou Liu (School of Biomedical Sciences and Engineering Guangzhou International Campus South China University of Technology Guangzhou 511442 China) H Hong Yu (Key Laboratory of Seed Innovation, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) P Pengchao Zhao (School of Biomedical Sciences and Engineering, Guangzhou International Campus) K Kunyu Zhang (School of Biomedical Sciences and Engineering, Guangzhou International Campus) L Liming Bian (School of Biomedical Sciences and Engineering, Guangzhou International Campus) W Weiming Liao (Department of Joint Surgery the First Affiliated Hospital of Sun Yat‐sen University Guangzhou 510080 China)

Abstract

Abstract The accumulation of reactive oxygen species (ROS) and poor oxygen supply are two prominent factors of the inflammatory microenvironment that delay diabetic wound healing. However, current clinical treatments cannot achieve effective ROS scavenging and sustained oxygenation. Herein, a ROS‐driven oxygenation hydrogel (OxyGel) spray that integrates a multifunctional nanozyme with a dynamically crosslinked sprayable hydrogel matrix is presented. The nanozyme, which is fabricated based on the ceria‐zoledronic acid nanoparticles modified with tannic acid (TCZ nanozymes), can mimic the cascade catalytic activities of superoxide dismutase (SOD) and catalase (CAT) to effectively scavenge ROS while generating oxygen. These synergistic actions rebalance the oxidative and hypoxic microenvironment of the diabetic wound, promote M1‐to‐M2 macrophage repolarization, and enhance the survival, migration, and angiogenesis of endothelial cells. A single administration of the nanozyme via the hydrogel spray stably deposits the nanozymes at the target sites to accelerate full‐thickness back skin wound and refractory foot ulcer wound healing in diabetic rats. Furthermore, RNA‐seq results revealed the upregulation of multiple signaling pathways related to wound healing by the OxyGel spray, highlighting the potential of this platform not only for the treatment of refractory diabetic wounds but also other diseases associated with oxidative stress and hypoxia.

Article Details

Volume / Issue Vol. 37, Issue 34
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

H

Hao Li

S

Shuzhen Wei

Q

Qiangjun Ling

School of Biomedical Sciences and Engineering, Guangzhou International Campus

R

Ruinan Wang

Department of Building Environment and Energy Engineering Research Institute for Sustainable Urban Development (RISUD) and Research Institute For Smart Energy (RISE) The Hong Kong Polytechnic University Kowloon Hong Kong SAR China

T

Tuozhou Liu

School of Biomedical Sciences and Engineering Guangzhou International Campus South China University of Technology Guangzhou 511442 China

H

Hong Yu

Key Laboratory of Seed Innovation, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

P

Pengchao Zhao

School of Biomedical Sciences and Engineering, Guangzhou International Campus

K

Kunyu Zhang

School of Biomedical Sciences and Engineering, Guangzhou International Campus

L

Liming Bian

School of Biomedical Sciences and Engineering, Guangzhou International Campus

W

Weiming Liao

Department of Joint Surgery the First Affiliated Hospital of Sun Yat‐sen University Guangzhou 510080 China