ABSTRACT Precise control of reactive oxygen species (ROS) is indispensable during tissue repairing. Inorganic nanozymes such as cerium dioxide (CeO 2 ) 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 CeO 2 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‐CeO 2 under SMF significantly promoted the polarization of macrophages toward the pro‐regenerative M2 phenotype. The as‐prepared Se‐CeO 2 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‐CeO 2 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.
Liu et al. (Sat,) studied this question.