Unlocking an Efficient SOD‐to‐CAT Catalytic Relay in a MOF Nanozyme via Dopamine‐Driven Interfacial Nanoreconstruction for Osteoarthritis Therapy

Z Zhiqiang Li (Key Laboratory of Green Chemistry & Technology, Ministry of Education, College of Chemistry) B Ben Wu W Weihua Li (Department of Neuroscience, Washington University School of Medicine) E Enrico Marsili K Kun Tang K Kuoyang Sun (Orthopedic Hospital, The First Affiliated Hospital, Jiangxi Medical College Nanchang University Nanchang China) Z Zhifu Cao (Orthopedic Hospital, The First Affiliated Hospital, Jiangxi Medical College Nanchang University Nanchang China) Y Yupeng Zhang H Hui Huang (Center of Basic Molecular Science (CBMS), Department of Chemistry) X Xiaofeng Li G Guocheng Wang (Center for Systems and Control)

Abstract

ABSTRACT Osteoarthritis (OA) is driven by a vicious cycle of inflammation and reactive oxygen species (ROS). While cobalt‐based metal‐organic framework (MOF) nanozymes are potent catalase (CAT) mimics, their therapeutic efficacy is crippled by an inherently weak superoxide dismutase (SOD)‐like activity that prevents full‐chain ROS scavenging. Here, we resolve this imbalance through an innovative “pre‐embedding/activation” strategy. This approach involves pre‐embedding Zn 2+ into a cobalt‐based framework to create a stable yet activatable precursor. The subsequent dopamine (DA)‐driven “activation” then remodels the latent Zn/Co‐N coordination sites, unlocking an efficient SOD‐to‐CAT catalytic relay by synergistically amplifying the SOD‐like activity for seamless elimination of the entire ROS cascade. This powerful scavenging capability restores mitochondrial function and reprograms macrophages toward an anti‐inflammatory M2 phenotype by inhibiting the ROS‐mediated S100A8/NF‐κB signaling axis and its destructive positive feedback loop. The resulting immunomodulation translates to profound therapeutic outcomes in a rat OA model, where it simultaneously promotes chondrocyte anabolism to achieve significant cartilage repair while suppressing peripheral nerve sensitization to provide sustained pain relief. Our work thus establishes nanoscale interfacial reconstruction as a powerful and rational platform for engineering sophisticated catalytic relays within nanozymes for advanced biomedical applications.

Article Details

Volume / Issue Vol. 38, Issue 19
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (11)

Z

Zhiqiang Li

Key Laboratory of Green Chemistry & Technology, Ministry of Education, College of Chemistry

B

Ben Wu

W

Weihua Li

Department of Neuroscience, Washington University School of Medicine

E

Enrico Marsili

K

Kun Tang

K

Kuoyang Sun

Orthopedic Hospital, The First Affiliated Hospital, Jiangxi Medical College Nanchang University Nanchang China

Z

Zhifu Cao

Orthopedic Hospital, The First Affiliated Hospital, Jiangxi Medical College Nanchang University Nanchang China

Y

Yupeng Zhang

H

Hui Huang

Center of Basic Molecular Science (CBMS), Department of Chemistry

X

Xiaofeng Li

G

Guocheng Wang

Center for Systems and Control