Spatiotemporally Programming Microenvironment to Recapitulate Endochondral Ossification via Greenhouse‐Inspired Bionic Niche

X Xuzheng Liu Y Yaning Zhao X Xiaoyi Wu Y Yueli Zhou (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) Y Yingheng Liu (Dental Materials Science Applied Oral Sciences and Community Dental Care Faculty of Dentistry The University of Hong Kong Hong Kong) S Shilei Wang (Institute of Crystal Materials, State Key Laboratory of Crystal Materials) Y Yufeng Zhang H Hongye Yang (School of Materials Science and Engineering) F Fangfang Song (Department of Surgery, Translational Research Program in Pediatric Orthopedics, The Children’s Hospital of Philadelphia) 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 Various biomaterials have been developed to address challenging critical‐sized bone defects. However, most of them focus on intramembranous ossification (IMO) rather than endochondral ossification (ECO), often resulting in suboptimal therapeutic outcomes. Drawing inspiration from the functionality of the greenhouse ecosystem, herein a bionic niche is innovatively crafted to recapitulate the ECO process. This niche consists of three hierarchical components: an embedded microchannel network that facilitates cell infiltration and matter exchange, a polydopamine surface modification layer with immunomodulatory functions, and an ECO‐targeted delivery system based on mesoporous silica nanoparticles. Through spatiotemporally programming of the microenvironment, the bionic niche effectively recapitulates the key stages of ECO. Notably, even in the rat calvaria, a region well‐known for IMO, the bionic niche is capable of initiating ECO, evident by cartilage template formation, leading to efficient bone regeneration. Taken together, this study introduces prospective concepts for designing next‐generation ECO‐driven biomaterials for bone tissue engineering.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

X

Xuzheng Liu

Y

Yaning Zhao

X

Xiaoyi Wu

Y

Yueli Zhou

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

Y

Yingheng Liu

Dental Materials Science Applied Oral Sciences and Community Dental Care Faculty of Dentistry The University of Hong Kong Hong Kong

S

Shilei Wang

Institute of Crystal Materials, State Key Laboratory of Crystal Materials

Y

Yufeng Zhang

H

Hongye Yang

School of Materials Science and Engineering

F

Fangfang Song

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

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