Yang Yue, Huang Chenyan, Zheng Huimin, Meng Zhaoqiang, Heng Boon Chin, Zhou Tuanfeng, Jiang Shengjie, Wei Yan
Beijing Laboratory of Biomedical Materials, Department of Geriatric Dentistry, Peking University School and Hospital of Stomatology, Beijing, China.
Department of Prosthodontics, The First Clinical Division, Peking University School and Hospital of Stomatology, Beijing, China.
Front Bioeng Biotechnol. 2022 Sep 20;10:1026911. doi: 10.3389/fbioe.2022.1026911. eCollection 2022.
Temporomandibular disorders (TMD) can be treated by promoting cartilage regeneration with biomaterials. However, there are deficiencies in the infiltration function of bone filler biological materials. In this study, stems cells were loaded onto gelatin methacryloyl (GelMA) hydrogel microspheres endowed with superwettable properties and TGF-β sustained-release function, which can quickly infiltrate the irregular surface of the temporomandibular joint (TMJ) bone defect area and accelerate cartilage healing. First, to improve cell adhesion and spreading function, the BMSCs-coated GelMA microspheres were endowed with superwetting property. At the same time, the swelling adsorption characteristics of gelatin microspheres could be used to load recombinant TGF-β within the microspheres, which could in turn promote the chondrogenic differentiation of multi-potent bone marrow mesenchymal stem cells. The SEM imaging demonstrated that BMSCs-coated GelMA microsphere has superwettable and superhydrophilic property, which enabled rapid adaptation to the bone defect surface morphology, which is conducive to tissue repair. Furthermore, the cartilage defect model showed that rBMSCs-coated GelMA microspheres promote temporomandibular joint arthritis repair. In conclusion, our study established that BMSC-coated GelMA microspheres endowed with superwetting properties, can colonize the bone defect repair site better with sustained release of growth factors, thus providing an innovative strategy for promoting cartilage regeneration.
颞下颌关节紊乱病(TMD)可通过生物材料促进软骨再生来治疗。然而,骨填充生物材料的浸润功能存在不足。在本研究中,将干细胞负载到具有超润湿性和TGF-β缓释功能的甲基丙烯酰化明胶(GelMA)水凝胶微球上,其可快速浸润颞下颌关节(TMJ)骨缺损区域的不规则表面并加速软骨愈合。首先,为改善细胞黏附和铺展功能,对负载骨髓间充质干细胞(BMSCs)的GelMA微球赋予超润湿性。同时,明胶微球的溶胀吸附特性可用于在微球内负载重组TGF-β,进而促进多能骨髓间充质干细胞的软骨分化。扫描电子显微镜成像表明,负载BMSCs的GelMA微球具有超润湿性和超亲水性,能够快速适应骨缺损表面形态,有利于组织修复。此外,软骨缺损模型表明,负载重组BMSCs的GelMA微球可促进颞下颌关节关节炎修复。总之,我们的研究证实,具有超润湿性的负载BMSCs的GelMA微球能够更好地在骨缺损修复部位定植并持续释放生长因子,从而为促进软骨再生提供了一种创新策略。