Zhang Pengrui, Qin Qiwei, Cao Xinna, Xiang Honglin, Feng Dechao, Wusiman Dilinaer, Li Yuling
Department of Orthopaedics, Laboratory of Biological Tissue Engineering and Digital Medicine, Affiliated Hospital of North Sichuan Medical College, Nanchong, Sichuan Province, China.
Division of Surgery & Interventional Science, University College London, London, UK.
Biomater Transl. 2024 Sep 28;5(3):205-235. doi: 10.12336/biomatertransl.2024.03.002. eCollection 2024.
Bone defects are a prevalent category of skeletal tissue disorders in clinical practice, with a range of pathogenic factors and frequently suboptimal clinical treatment effects. In bone regeneration of bone defects, the bone regeneration microenvironment-composed of physiological, chemical, and physical components-is the core element that dynamically coordinates to promote bone regeneration. In recent years, medical biomaterials with bioactivity and functional tunability have been widely researched upon and applied in the fields of tissue replacement/regeneration, and remodelling of organ structure and function. The biomaterial treatment system based on the comprehensive regulation strategy of bone regeneration microenvironment is expected to solve the clinical problem of bone defect. Hydrogel microspheres (HMS) possess a highly specific surface area and porosity, an easily adjustable physical structure, and high encapsulation efficiency for drugs and stem cells. They can serve as highly efficient carriers for bioactive factors, gene agents, and stem cells, showing potential advantages in the comprehensive regulation of bone regeneration microenvironment to enhance bone regeneration. This review aims to clarify the components of the bone regeneration microenvironment, the application of HMS in bone regeneration, and the associated mechanisms. It also discusses various preparation materials and methods of HMS and their applications in bone tissue engineering. Furthermore, it elaborates on the relevant mechanisms by which HMS regulates the physiological, chemical, and physical microenvironment in bone regeneration to achieve bone regeneration. Finally, we discuss the future prospects of the HMS system application for comprehensive regulation of bone regeneration microenvironment, to provide novel perspectives for the research and application of HMS in the bone tissue engineering field.
骨缺损是临床实践中常见的一类骨骼组织疾病,其致病因素多样,临床治疗效果往往不尽人意。在骨缺损的骨再生过程中,由生理、化学和物理成分组成的骨再生微环境是动态协调促进骨再生的核心要素。近年来,具有生物活性和功能可调性的医用生物材料在组织替代/再生、器官结构和功能重塑等领域得到了广泛研究和应用。基于骨再生微环境综合调控策略的生物材料治疗系统有望解决骨缺损的临床问题。水凝胶微球(HMS)具有高比表面积和孔隙率、易于调节的物理结构以及对药物和干细胞的高包封效率。它们可作为生物活性因子、基因载体和干细胞的高效载体,在骨再生微环境的综合调控以促进骨再生方面显示出潜在优势。本综述旨在阐明骨再生微环境的组成、HMS在骨再生中的应用及其相关机制。还讨论了HMS的各种制备材料和方法及其在骨组织工程中的应用。此外,阐述了HMS在骨再生中调节生理、化学和物理微环境以实现骨再生的相关机制。最后,我们讨论了HMS系统在骨再生微环境综合调控中的应用前景,为HMS在骨组织工程领域的研究和应用提供新的视角。