Gao Haihan, Wang Liren, Lin Zhiqi, Jin Haocheng, Lyu Yangbao, Kang Yuhao, Zhu Tonghe, Zhao Jinzhong, Jiang Jia
Department of Sports Medicine, Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine, Shanghai, 200233, China.
Regenerative Sports Medicine and Translational Youth Science and Technology Innovation Workroom, Shanghai Jiao Tong University School of Medicine, No. 227 South Chongqing Road, Shanghai, 200025, China.
Mater Today Bio. 2023 Jul 26;22:100749. doi: 10.1016/j.mtbio.2023.100749. eCollection 2023 Oct.
Facilitating regeneration of the tendon-to-bone interface can reduce the risk of postoperative retear after rotator cuff repair. Unfortunately, undesirable inflammatory responses following injury, difficulties in fibrocartilage regeneration, and bone loss in the surrounding area are major contributors to suboptimal tendon-bone healing. Thus, the development of biomaterials capable of regulating macrophage polarization to a favorable phenotype and promoting the synchronous regeneration of the tendon-to-bone interface is currently a top priority. Here, strontium-doped mesoporous bioglass nanoparticles (Sr-MBG) were synthesized through a modulated sol-gel method and Bi-lineage Inducible and Immunoregulatory Electrospun Fibers Scaffolds (BIIEFS) containing Sr-MBG were fabricated. The BIIEFS were biocompatible, showed sustained release of multiple types of bioactive ions, enhanced osteogenic and chondrogenic differentiation of mesenchymal stem cells (MSCs), and facilitated macrophage polarization towards the M2 phenotype . The implantation of BIIEFS at the torn rotator cuff resulted in greater numbers of M2 macrophages and the synchronous regeneration of tendon, fibrocartilage, and bone at the tendon-to-bone interface, leading to a significant improvement in the biomechanical strength of the supraspinatus tendon-humerus complexes. Our research offers a feasible strategy to fabricate immunoregulatory and multi-lineage inducible electrospun fibers scaffolds incorporating bioglass nanoparticles for the regeneration of soft-to-hard tissue interfaces.
促进肌腱-骨界面的再生可降低肩袖修复术后再撕裂的风险。不幸的是,损伤后不良的炎症反应、纤维软骨再生困难以及周围区域的骨质流失是导致肌腱-骨愈合不理想的主要因素。因此,开发能够将巨噬细胞极化调节为有利表型并促进肌腱-骨界面同步再生的生物材料是当前的首要任务。在此,通过调制溶胶-凝胶法合成了掺锶介孔生物玻璃纳米颗粒(Sr-MBG),并制备了含有Sr-MBG的双谱系诱导和免疫调节电纺纤维支架(BIIEFS)。BIIEFS具有生物相容性,能持续释放多种生物活性离子,增强间充质干细胞(MSC)的成骨和成软骨分化,并促进巨噬细胞向M2表型极化。在撕裂的肩袖处植入BIIEFS可导致更多的M2巨噬细胞,并使肌腱-骨界面处的肌腱、纤维软骨和骨同步再生,从而显著提高冈上肌腱-肱骨复合体的生物力学强度。我们的研究提供了一种可行的策略,用于制造结合生物玻璃纳米颗粒的免疫调节和多谱系诱导电纺纤维支架,以促进软-硬组织界面的再生。