Engineering Large‐Scale Self‐Mineralizing Bone Organoids with Bone Matrix‐Inspired Hydroxyapatite Hybrid Bioinks

Author:

Wang Jian123,Wu Yan1,Li Guangfeng124,Zhou Fengjin5,Wu Xiang12,Wang Miaomiao12,Liu Xinru1,Tang Hua1,Bai Long1,Geng Zhen1,Song Peiran1,Shi Zhongmin6,Ren Xiaoxiang1,Su Jiacan13ORCID

Affiliation:

1. Institute of Translational Medicine Musculoskeletal Organoid Research Center National Center for Translational Medicine SHU Branch Shanghai University Shanghai 200444 P. R. China

2. School of Medicine Shanghai University Shanghai 200444 P. R. China

3. Department of Orthopedic Xin Hua Hospital Shanghai Jiao Tong University School of Medicine Shanghai 200092 P. R. China

4. Department of Trauma Orthopedics Zhongye Hospital Shanghai 200941 P. R. China

5. Department of Orthopedics Honghui Hospital Xi'an Jiao Tong University Xi'an 710000 P. R. China

6. Department of Orthopedic Surgery Shanghai Sixth People's Hospital Shanghai 200233 P. R. China

Abstract

AbstractAddressing large bone defects remains a significant challenge owing to the inherent limitations in self‐healing capabilities, resulting in prolonged recovery and suboptimal regeneration. Although current clinical solutions are available, they have notable shortcomings, necessitating more efficacious approaches to bone regeneration. Organoids derived from stem cells show great potential in this field; however, the development of bone organoids has been hindered by specific demands, including the need for robust mechanical support provided by scaffolds and hybrid extracellular matrices (ECM). In this context, bioprinting technologies have emerged as powerful means of replicating the complex architecture of bone tissue. The research focused on the fabrication of a highly intricate bone ECM analog using a novel bioink composed of gelatin methacrylate/alginate methacrylate/hydroxyapatite (GelMA/AlgMA/HAP). Bioprinted scaffolds facilitate the long‐term cultivation and progressive maturation of extensive bioprinted bone organoids, foster multicellular differentiation, and offer valuable insights into the initial stages of bone formation. The intrinsic self‐mineralizing quality of the bioink closely emulates the properties of natural bone, empowering organoids with enhanced bone repair for both in vitro and in vivo applications. This trailblazing investigation propels the field of bone tissue engineering and holds significant promise for its translation into practical applications.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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