Biocatalytic and Redox‐Regulated Nanoarchitectures for Precision Inflammation and Immune Homeostasis Modulation to Combat Rheumatoid Arthritis

S Sutong Xiao (College of Polymer Science and Engineering, State Key Laboratory of Advanced Polymer Materials) S Songya Huang (Department of Medical Ultrasound, West China Hospital Sichuan University Chengdu 610041 China) M Mao Wang T Ting Wang (Department of Radiation Oncology The Affiliated Cancer Hospital of Zhengzhou University and Henan Cancer Hospital Zhengzhou China) M Ming Han Y Yuting Deng W Wei Geng (College of Polymer Science and Engineering, State Key Laboratory of Advanced Polymer Materials) L Liang Cheng (Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices) X Xiaolin Wang (School of Pharmacy and State Key Laboratory of Quality Research in Chinese Medicine) L Lang Ma (Department of Ultrasound, Frontiers Science Center for Disease-Related Molecular Network, West China Hospital) L Li Qiu C Chong Cheng (Department of Ultrasound, Frontiers Science Center for Disease-Related Molecular Network, West China Hospital)

Abstract

Abstract The chronic inflammatory milieu of rheumatoid arthritis (RA), marked by elevated reactive oxygen species (ROS), perpetually activated pro‐inflammatory macrophages (M1) and osteoclasts, and significant infiltration of pro‐inflammatory cytokines contributes to abnormal articular redox imbalance, severe synovitis, and progressive joint erosion. In this study, the rational design of a biocatalytic and redox‐regulated nanoarchitecture comprising Ru cluster‐anchored hydroxylated Fe 2 O 3 (Ru‐HFO) encapsulated within bone marrow stem cell‐derived extracellular vesicles (BEVs), for precision inflammation modulation to combat RA is proposed. When combined with ultrasound (US) stimulation, this biocatalytic and inflammation‐targeting nanoarchitecture (BEVs@Ru‐HFO) can reprogram macrophages and osteoclasts to restore redox and immune homeostasis, thereby alleviating RA. The findings reveal that the hydroxylation strategy enhances electron density at Ru redox centers and fine‐tunes the binding affinity of oxygen intermediates, thereby ensuring exceptional multi‐enzymatic ROS‐scavenging activities. Notably, under ultrasonic irradiation, BEVs@Ru‐HFO targets inflamed joints, promotes the local accumulation of anti‐inflammatory macrophages, downregulates inflammatory cytokines, and ameliorates the hypoxic microenvironment to inhibit osteoclastogenesis. This ultimately confers bone and cartilage protection and restores joint function. It is posit that this biocatalytic and redox‐regulated nanoarchitecture, with its superior antioxidant and immunomodulatory capabilities, represents a promising strategy for engineering ROS‐catalytic materials to treat RA and potentially many other autoimmune diseases.

Article Details

Volume / Issue Vol. 37, Issue 33
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

S

Sutong Xiao

College of Polymer Science and Engineering, State Key Laboratory of Advanced Polymer Materials

S

Songya Huang

Department of Medical Ultrasound, West China Hospital Sichuan University Chengdu 610041 China

M

Mao Wang

T

Ting Wang

Department of Radiation Oncology The Affiliated Cancer Hospital of Zhengzhou University and Henan Cancer Hospital Zhengzhou China

M

Ming Han

Y

Yuting Deng

W

Wei Geng

College of Polymer Science and Engineering, State Key Laboratory of Advanced Polymer Materials

L

Liang Cheng

Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices

X

Xiaolin Wang

School of Pharmacy and State Key Laboratory of Quality Research in Chinese Medicine

L

Lang Ma

Department of Ultrasound, Frontiers Science Center for Disease-Related Molecular Network, West China Hospital

L

Li Qiu

C

Chong Cheng

Department of Ultrasound, Frontiers Science Center for Disease-Related Molecular Network, West China Hospital