Tolerant and Rapid Endochondral Bone Regeneration Using Framework‐Enhanced 3D Biomineralized Matrix Hydrogels

Author:

Bai Baoshuai1234,Liu Yanhan125,Huang Jinyi12,Wang Sinan12,Chen Hongying12,Huo Yingying12,Zhou Hengxing34,Liu Yu12,Feng Shiqing34,Zhou Guangdong12ORCID,Hua Yujie12

Affiliation:

1. Shanghai Key Laboratory of Tissue Engineering Department of Plastic and Reconstructive Surgery of Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai 200011 P. R. China

2. National Tissue Engineering Center of China Shanghai 200241 P. R. China

3. Department of Orthopaedics Advanced Medical Research Institute Qilu Hospital of Shangdong University Centre for Orthopaedics Shandong University Jinan Shandong 250100 P. R. China

4. Department of Orthopaedics Cheeloo College of Medicine The Second Hospital of Shandong University Shandong University Jinan Shandong 250033 P. R. China

5. Department of Ophthalmology Renji Hospital School of Medicine Shanghai Jiao Tong University Shanghai 200127 P. R. China

Abstract

AbstractTissue‐engineered bone has emerged as a promising alternative for bone defect repair due to the advantages of regenerative bone healing and physiological functional reconstruction. However, there is very limited breakthrough in achieving favorable bone regeneration due to the harsh osteogenic microenvironment after bone injury, especially the avascular and hypoxic conditions. Inspired by the bone developmental mode of endochondral ossification, a novel strategy is proposed for tolerant and rapid endochondral bone regeneration using framework‐enhanced 3D biomineralized matrix hydrogels. First, it is meticulously designed 3D biomimetic hydrogels with both hypoxic and osteoinductive microenvironment, and then integrated 3D‐printed polycaprolactone framework to improve their mechanical strength and structural fidelity. The inherent hypoxic 3D matrix microenvironment effectively activates bone marrow mesenchymal stem cells self‐regulation for early‐stage chondrogenesis via TGFβ/Smad signaling pathway due to the obstacle of aerobic respiration. Meanwhile, the strong biomineralized microenvironment, created by a hybrid formulation of native‐constitute osteogenic inorganic salts, can synergistically regulate both bone mineralization and osteoclastic differentiation, and thus accelerate the late‐stage bone maturation. Furthermore, both in vivo ectopic osteogenesis and in situ skull defect repair successfully verified the high efficiency and mechanical maintenance of endochondral bone regeneration mode, which offers a promising treatment for craniofacial bone defect repair.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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