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Updated: Jan 26, 2026

In Vivo Imaging of Reactive Oxygen Species in a Murine Wound Model
Published on: November 17, 2018
A Magnetically Responsive Selenium-Doped CeO2 Nanozyme for On-Demand Reactive Oxygen Species Modulation and Enhanced
Ziyan Liu1, Xuetong Wang1, Ziyang Liu2
1Hebei Key Laboratory of Biomaterials and Smart Theranostics, School of Health Sciences and Biomedical Engineering, Hebei University of Technology, Tianjin, China.
Abstract:
Precise control of reactive oxygen species (ROS) is indispensable during tissue repairing. Inorganic nanozymes such as cerium dioxide (CeO2) have emerged as potent ROS modulators, however, their fixed catalytic activity prevents on-demand adaptation to the rapidly changing immune microenvironment. Here, we reported a magnetically responsive dynamic antioxidant system that autonomously tunes its ROS-scavenging capacity on demand. Selenium (Se) doping was first exploited to engineer high-density oxygen vacancies (Vo) in the CeO2 lattice, enabling the nanozyme intrinsic antioxidant activity enhancement. Its catalytic efficiency could be further amplified under a static magnetic field (SMF). In vitro analysis revealed that Se-CeO2 under SMF significantly promoted the polarization of macrophages toward the pro-regenerative M2 phenotype. The as-prepared Se-CeO2 was subsequently loaded into a sodium alginate-hyaluronic acid hydrogel (SCSH-Gel), witnessed to protect chondrocytes and fibroblasts from oxidative stress in vitro. Followed in vivo tests found SMF and Se-CeO2 synergistically accelerate neocartilage formation in a cartilage defect model and promoted re-epithelialization in a full-thickness skin-wound model. Collectively, our results demonstrated that Se doping coupled with magnetic actuation enables inorganic nanozymes to dynamically modulate ROS homeostasis, offering a versatile strategy for precisely programming the microenvironment to facilitate tissue regeneration.
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