Xu Bingbing, Ye Jing, Fan Bao-Shi, Wang Xinjie, Zhang Ji-Ying, Song Shitang, Song Yifan, Jiang Wen-Bo, Wang Xing, Yu Jia-Kuo
Sports Medicine Department, Beijing Key Laboratory of Sports Injuries, Peking University Third Hospital, No.49, North Garden Road, Haidian District, Beijing 100191, PR China.
Peking University Institute of Sports Medicine, No.49, North Garden Road, Haidian District, Beijing 100191, PR China.
Bioact Mater. 2022 May 30;20:194-207. doi: 10.1016/j.bioactmat.2022.05.019. eCollection 2023 Feb.
Meniscus is a wedge-shaped fibrocartilaginous tissue, playing important roles in maintaining joint stability and function. Meniscus injuries are difficult to heal and frequently progress into structural breakdown, which then leads to osteoarthritis. Regeneration of heterogeneous tissue engineering meniscus (TEM) continues to be a scientific and translational challenge. The morphology, tissue architecture, mechanical strength, and functional applications of the cultivated TEMs have not been able to meet clinical needs, which may due to the negligent attention on the importance of microenvironment and . Herein, we combined the 3D (three-dimensional)-printed gradient porous scaffolds, spatiotemporal partition release of growth factors, and anti-inflammatory and anti-oxidant microenvironment regulation of Ac2-26 peptide to prepare a versatile meniscus composite scaffold with heterogeneous bionic structures, excellent biomechanical properties and anti-inflammatory and anti-oxidant effects. By observing the results of cell activity and differentiation, and biomechanics under anti-inflammatory and anti-oxidant microenvironments , we explored the effects of anti-inflammatory and anti-oxidant microenvironments on construction of regional and functional heterogeneous TEM via the growth process regulation, with a view to cultivating a high-quality of TEM from bench to bedside.
半月板是一种楔形纤维软骨组织,在维持关节稳定性和功能方面发挥着重要作用。半月板损伤难以愈合,且经常发展为结构破坏,进而导致骨关节炎。异种组织工程半月板(TEM)的再生仍然是一个科学和转化方面的挑战。培养的TEM的形态、组织结构、机械强度和功能应用尚未能够满足临床需求,这可能是由于对微环境重要性的疏忽关注。在此,我们结合3D(三维)打印的梯度多孔支架、生长因子的时空分区释放以及Ac2-26肽的抗炎和抗氧化微环境调节,制备了一种具有异种仿生结构、优异生物力学性能以及抗炎和抗氧化作用的多功能半月板复合支架。通过观察抗炎和抗氧化微环境下的细胞活性和分化结果以及生物力学,我们通过生长过程调节探索了抗炎和抗氧化微环境对构建区域和功能异种TEM的影响,以期从实验室到临床培育出高质量的TEM。