Li Ruiyang, Wang Jian, Lin Qiushui, Yin Zhifeng, Zhou Fengjin, Chen Xiao, Tan Hongbo, Su Jiacan
Department of Orthopedics, Trauma Orthopedics Center, Institute of Musculoskeletal Injury and Translational Medicine of Organoids, Xinhua Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, 200092, P. R. China.
Institute of Translational Medicine, National Center for Translational Medicine SHU Branch, Shanghai University, Shanghai, 200444, P. R. China.
Adv Healthc Mater. 2025 Mar;14(6):e2404345. doi: 10.1002/adhm.202404345. Epub 2024 Dec 30.
Mechanical force is essential for bone development, bone homeostasis, and bone fracture healing. In the past few decades, various biomaterials have been developed to provide mechanical signals that mimic the natural bone microenvironment, thereby promoting bone regeneration. Bone organoids, emerging as a novel research approach, are 3D micro-bone tissues that possess the ability to self-renew and self-organize, exhibiting biomimetic spatial characteristics. Incorporating mechano-responsive biomaterials in the construction of bone organoids presents a promising avenue for simulating the mechanical bone microenvironment. Therefore, this review commences by elucidating the impact of mechanical force on bone health, encompassing both cellular interactions and alterations in bone structure. Furthermore, the most recent applications of mechano-responsive biomaterials within the realm of bone tissue engineering are highlighted. Three different types of mechano-responsive biomaterials are introduced with a focus on their responsive mechanisms, construction strategies, and efficacy in facilitating bone regeneration. Based on a comprehensive overview, the prospective utilization and future challenges of mechano-responsive biomaterials in the construction of bone organoids are discussed. As bone organoid technology advances, these biomaterials are poised to become powerful tools in bone regeneration.
机械力对骨骼发育、骨骼稳态和骨折愈合至关重要。在过去几十年中,人们开发了各种生物材料来提供模拟天然骨微环境的机械信号,从而促进骨再生。骨类器官作为一种新兴的研究方法,是具有自我更新和自组织能力的三维微骨组织,展现出仿生空间特征。将机械响应性生物材料纳入骨类器官的构建为模拟机械骨微环境提供了一条有前景的途径。因此,本综述首先阐述机械力对骨骼健康的影响,包括细胞相互作用和骨结构变化。此外,还重点介绍了机械响应性生物材料在骨组织工程领域的最新应用。介绍了三种不同类型的机械响应性生物材料,重点关注它们的响应机制、构建策略以及促进骨再生的功效。在全面综述的基础上,讨论了机械响应性生物材料在骨类器官构建中的预期应用和未来挑战。随着骨类器官技术的进步,这些生物材料有望成为骨再生的有力工具。