Shanghai Jiao Tong University Affiliated Sixth People's Hospital, School of Biomedical Engineering, Shanghai Jiao Tong University, 1954 Huashan Road, Shanghai, 200030, PR China; School of Biomedical Engineering, Shanghai Jiao Tong University, 1954 Huashan Road, Shanghai, 200030, PR China.
Department of Orthopedics, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, 600 Yi Shan Road, Shanghai, 200233, PR China.
Biomaterials. 2019 Feb;192:149-158. doi: 10.1016/j.biomaterials.2018.11.017. Epub 2018 Nov 13.
Osteochondral regeneration with the formation of hyaline cartilage and subchondral bone as well as the integration between the newly formed tissues with the host tissue still remains a great challenge. In this study, a construct containing an injectable continuous stratified scaffold and multiple cell systems was designed for enhancing osteochondral regeneration. Briefly, an injectable sodium alginate(SA)/bioglass (BG) composite hydrogel containing bone marrow stem cells (BMSCs) (SA/BG + BMSCs) was used for subchondral bone regeneration and an injectable thermosensitive SA/agarose (AG) composite hydrogel with co-culture of BMSCs and articular chondrocytes (ACs) (SA/AG + ACs/BMSCs) was applied for articular cartilage regeneration. The continuous SA phase and the stratified structure enable the scaffold to mimic the natural osteochondral structure. In addition, the SA/BG + BMSCs hydrogel could enhance the osteoblast differentiation of BMSCs by upregulating their alkaline phosphatase and collagen I gene expressions, and the SA/AG + ACs/BMSCs hydrogel could promote the chondrocyte differentiation of BMSCs by upregulating their Acan and collagen II gene expressions, which indicated that this stratified scaffold could mimic the natural osteochondral function. Furthermore, after the stratified construct was injected into a rat osteochondral defect model, obvious neonatal articular cartilage tissues and subchondral bone tissues with regular surface and highly integration with normal tissues could be observed. This structural and functional biomimetic construct, together with its proper swelling ratio, could not only stimulate the hyaline cartilage and subchondral bone regeneration in an entire osteochondral unit but also promote the integration between the newly formed tissues and the host tissue.
软骨下骨和透明软骨的再生,以及新生组织与宿主组织的整合仍然是一个巨大的挑战。在这项研究中,设计了一种包含可注射连续分层支架和多个细胞系统的构建体,用于增强软骨下骨再生。简要地说,使用一种可注射的含骨髓间充质干细胞(BMSCs)的海藻酸钠(SA)/生物玻璃(BG)复合水凝胶(SA/BG+BMSCs)用于软骨下骨再生,一种可注射的热敏感的 SA/琼脂糖(AG)复合水凝胶,共培养 BMSCs 和关节软骨细胞(ACs)(SA/AG+ACs/BMSCs)用于关节软骨再生。连续的 SA 相和分层结构使支架能够模拟自然的软骨下骨结构。此外,SA/BG+BMSCs 水凝胶可以通过上调碱性磷酸酶和胶原 I 基因表达来增强 BMSCs 的成骨细胞分化,SA/AG+ACs/BMSCs 水凝胶可以通过上调 Acan 和胶原 II 基因表达来促进 BMSCs 的软骨细胞分化,这表明这种分层支架可以模拟自然的软骨下骨功能。此外,将分层构建体注入大鼠软骨下骨缺损模型后,可以观察到明显的新生儿关节软骨组织和表面规则、与正常组织高度整合的软骨下骨组织。这种结构和功能仿生构建体,以及其适当的溶胀比,不仅可以刺激整个软骨下骨单位的透明软骨和软骨下骨再生,还可以促进新生组织与宿主组织的整合。