Osteomimix: A Multidimensional Biomimetic Cascade Strategy for Bone Defect Repair

X Xiaoyi Wu H Hongye Yang (School of Materials Science and Engineering) G Gufeng Liu (State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration Key laboratory of Stomatology School & Hospital of Stomatology Wuhan University Wuhan 430079 China) W Wei Sun J Jiyun Li Y Yaning Zhao X Xin Gao X Xuzheng Liu F Fangfang Song (Department of Surgery, Translational Research Program in Pediatric Orthopedics, The Children’s Hospital of Philadelphia) S Shilei Wang (Institute of Crystal Materials, State Key Laboratory of Crystal Materials) Z Ziyang Lu C Chaoji Chen (Hubei Key Laboratory of Biomass Resource Chemistry and Environmental Biotechnology, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Hubei Engineering Center of Natural Polymers-based Medical Materials, School of Resource and Environmental Science, Wuhan University) C Cui Huang (State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration Key Laboratory of Oral Biomedicine Ministry of Education Hubei Key Laboratory of Stomatology School & Hospital of Stomatology Wuhan University Wuhan 430079 China)

Abstract

Abstract Despite advancements in biomimetic mineralization techniques, the repair of large‐scale bone defects remains a significant challenge. Inspired by the bone formation process, a multidimensional biomimetic cascade strategy is developed by replicating the biomineralization cascade, emulating the hierarchical structure of bone, and biomimicking its biological functions for efficient bone regeneration. This strategy involves the photocrosslinking of sodium methacrylate carboxymethyl cellulose‐stabilized amorphous magnesium‐calcium phosphate with methacrylate‐modified type I collagen to create a self‐mineralizing hydrogel. The hydrogel is then integrated with either naturally derived or synthetic oriented bulk scaffolds. The resulting composite, named Osteomimix, provides excellent mechanical support and can be customized for irregular bone defects using CAD/CAM technology. Through in vitro and in vivo studies, this work finds that Osteomimix exhibits spontaneous in situ biomimetic mineralization in a cell‐free environment, while modulating immune responses and promoting vascularized bone formation in a cell‐dependent manner. Built on bone‐specific insights, this strategy achieves biomimicry across temporal, spatial, and functional dimensions, facilitating the seamless integration of artificial constructs with the natural tissue repair dynamics.

Article Details

Volume / Issue Vol. 37, Issue 11
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

X

Xiaoyi Wu

H

Hongye Yang

School of Materials Science and Engineering

G

Gufeng Liu

State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration Key laboratory of Stomatology School & Hospital of Stomatology Wuhan University Wuhan 430079 China

W

Wei Sun

J

Jiyun Li

Y

Yaning Zhao

X

Xin Gao

X

Xuzheng Liu

F

Fangfang Song

Department of Surgery, Translational Research Program in Pediatric Orthopedics, The Children’s Hospital of Philadelphia

S

Shilei Wang

Institute of Crystal Materials, State Key Laboratory of Crystal Materials

Z

Ziyang Lu

C

Chaoji Chen

Hubei Key Laboratory of Biomass Resource Chemistry and Environmental Biotechnology, Hubei International Scientific and Technological Cooperation Base of Sustainable Resource and Energy, Hubei Engineering Center of Natural Polymers-based Medical Materials, School of Resource and Environmental Science, Wuhan University

C

Cui Huang

State Key Laboratory of Oral & Maxillofacial Reconstruction and Regeneration Key Laboratory of Oral Biomedicine Ministry of Education Hubei Key Laboratory of Stomatology School & Hospital of Stomatology Wuhan University Wuhan 430079 China