Nanostructured 3D‐Printed Hybrid Scaffold Accelerates Bone Regeneration by Photointegrating Nanohydroxyapatite

Author:

Tong Lei1,Pu Xiaocong12,Liu Quanying1,Li Xing1,Chen Manyu1,Wang Peilei1,Zou Yaping1,Lu Gonggong3,Liang Jie14,Fan Yujiang1,Zhang Xingdong1,Sun Yong1ORCID

Affiliation:

1. National Engineering Research Center for Biomaterials Sichuan University 29# Wangjiang Road Chengdu 610064 China

2. Sichuan Testing Center of Medical Devices Sichuan Institute for Drug Control NMPA Key Laboratory for Technical Research on Drug Products In Vitro and In Vivo Correlation 8# Xinwen Road Chengdu 611731 China

3. Department of Neurosurgery West China Hospital Sichuan University 37# Guoxue Lane Chengdu 610041 China

4. Sichuan Testing Center for Biomaterials and Medical Devices Sichuan University 29# Wangjiang Road Chengdu 610064 China

Abstract

AbstractNanostructured biomaterials that replicate natural bone architecture are expected to facilitate bone regeneration. Here, nanohydroxyapatite (nHAp) with vinyl surface modification is acquired by silicon‐based coupling agent and photointegrated with methacrylic anhydride‐modified gelatin to manufacture a chemically integrated 3D‐printed hybrid bone scaffold (75.6 wt% solid content). This nanostructured procedure significantly increases its storage modulus by 19.43‐fold (79.2 kPa) to construct a more stable mechanical structure. Furthermore, biofunctional hydrogel with biomimetic extracellular matrix is anchored onto the filament of 3D‐printed hybrid scaffold (HGel‐g‐nHAp) by polyphenol‐mediated multiple chemical reactions, which contributes to initiate early osteogenesis and angiogenesis by recruiting endogenous stem cells in situ. Significant ectopic mineral deposition is also observed in subcutaneously implanted nude mice with storage modulus enhancement of 25.3‐fold after 30 days. Meanwhile, HGel‐g‐nHAp realizes substantial bone reconstruction in the rabbit cranial defect model, achieving 61.3% breaking load strength and 73.1% bone volume fractions in comparison to natural cranium 15 weeks after implantation. This optical integration strategy of vinyl modified nHAp provides a prospective structural design for regenerative 3D‐printed bone scaffold.

Funder

National Natural Science Foundation of China

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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