Hao Jianxin, Du Lin, He Yuening, Wu Chengtie
State Key Laboratory of High-Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, P. R. China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
BME Front. 2025 Jan 23;6:0089. doi: 10.34133/bmef.0089. eCollection 2025.
This study aims to clarify the effects of bioceramic interface cues on macrophages. Recently, there have been many researches exploring the effects of interface topography cues on macrophage polarization and cytokine secretion. However, the effects and underlying mechanisms of bioceramic interface cues on macrophages still need exploring. This study provides insights into the effects of bioceramic micro-groove surface structures on macrophages. With the development of bone tissue engineering methods, bioceramics have been used for bone repair. After the implantation of bioceramics, innate immune response that occurs at the interface of materials can deeply influence the subsequent inflammation and bone regeneration progress. Therefore, the exploration and regulation of immune response of the bioceramic interface will be beneficial to promote the bone regeneration effects. In this study, bioceramics with micro-groove structures on the surface are fabricated by digital light processing 3-dimensional printing technology. Then, micro-groove structures with different spacings (0, 25, 50, and 75 μm) are prepared separately to explore the effects on macrophages. The large spacing micro-groove structure can promote the M2 polarization and osteoinductive cytokine secretion of macrophage. The reason is that the large spacing micro-groove structure can induce directional arrangement of macrophage so as to change the phenotype and cytokine secretion. Further researches show that macrophage of the large spacing micro-groove structure can promote the osteogenic differentiation of bone mesenchymal stem cells, which can benefit osteogenesis and osteointegration. This study offers an effective and application potential method for bone repair.
本研究旨在阐明生物陶瓷界面线索对巨噬细胞的影响。最近,有许多研究探索界面形貌线索对巨噬细胞极化和细胞因子分泌的影响。然而,生物陶瓷界面线索对巨噬细胞的影响及其潜在机制仍有待探索。本研究深入探讨了生物陶瓷微槽表面结构对巨噬细胞的影响。随着骨组织工程方法的发展,生物陶瓷已被用于骨修复。生物陶瓷植入后,材料界面发生的固有免疫反应会深刻影响随后的炎症和骨再生进程。因此,探索和调节生物陶瓷界面的免疫反应将有助于促进骨再生效果。在本研究中,通过数字光处理三维打印技术制备了表面具有微槽结构的生物陶瓷。然后,分别制备具有不同间距(0、25、50和75μm)的微槽结构,以探索其对巨噬细胞的影响。大间距微槽结构可促进巨噬细胞的M2极化和骨诱导细胞因子分泌。原因是大间距微槽结构可诱导巨噬细胞定向排列,从而改变其表型和细胞因子分泌。进一步研究表明,大间距微槽结构的巨噬细胞可促进骨间充质干细胞的成骨分化,这有利于骨生成和骨整合。本研究为骨修复提供了一种有效且具有应用潜力的方法。