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Biomimetic design and fabrication of multilayered osteochondral scaffolds by low-temperature deposition manufacturing and thermal-induced phase-separation techniques

机译:低温沉积制造和热诱导的相分离技术对多层骨质支架的仿生设计和制造

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摘要

Integrative osteochondral repair is a useful strategy for cartilage-defect repair. To mimic the microenvironment, it is necessary that scaffolds effectively mimic the extracellular matrix of natural cartilage and subchondral bone. In this study, biomimetic osteochondral scaffolds containing an oriented cartilage layer, a compact layer, and a three-dimensional (3D)-printed core-sheath structured-bone layer were developed. The oriented cartilage layer was designed to mimic the structural and material characteristics of native cartilage tissue and was fabricated with cartilage matrix-chitosan materials, using thermal-induced phase-separation technology. The 3D-printed core-sheath structured-bone layer was fabricated with poly(L-lactide-co-glycolide) / beta-tricalcium phosphate-collagen materials by low-temperature deposition technology, using a specially designed core-sheath nozzle, and was designed to mimic the mechanical characteristics of subchondral bone and improve scaffold hydrophilicity. The compact layer was designed to mimic the calcified-layer structure of natural cartilage to ensure the presence of different suitable microenvironments for the regeneration of bone and cartilage. A dissolving-bonding process was developed to effectively combine the three parts together, after which the bone and cartilage scaffolds exhibited good mechanical properties and hydrophilicity. Additionally, goat autologous bone mesenchymal stem cells (BMSCs) were isolated and then seeded into the bone and cartilage layers, respectively, and following a 1 week culture in vitro, the BMSC-scaffold constructs were implanted into a goat articulardefect model. Our results indicated that the scaffolds exhibited good biocompatibility, and 24 weeks after implantation, the femoral condyle surface was relatively flat and consisted of a large quantity of hyaloid cartilage. Furthermore, histological staining revealed regenerated trabecular bone formed in the subchondral bone-defect area. These results provided a new method to fabricate biomimetic osteochondral scaffolds and demonstrated their effectiveness for future clinical applications in cartilage-defect repair.
机译:综合性骨科修复是软骨缺陷修复的一种有用策略。为了模仿微环境,必须有效地模仿天然软骨和副骨的细胞外基质。在该研究中,开发了含有面向软骨层,紧凑层和三维(3D) - 孔芯鞘结构 - 骨层的仿真骨质色神经支架。面向的软骨层设计用于模拟天然软骨组织的结构和材料特性,并使用热诱导的相分离技术用软骨基质 - 壳聚糖材料制造。使用特殊设计的芯鞘喷嘴,用低温沉积技术用聚(L-丙交酯 - 共乙酰胺)/β-β-β-β-β-β-β-β-胶原材料制造3D印刷的芯鞘结构 - 骨层,并且是旨在模仿骨髓内骨的机械特性,提高支架亲水性。致密层设计用于模拟天然软骨的钙化层结构,以确保存在不同合适的微环境用于再生骨和软骨。开发了一种溶解粘合过程,以有效地将三个部分结合在一起,之后骨和软骨支架表现出良好的机械性能和亲水性。另外,分离山羊自体骨髓间充质干细胞(BMSC),然后分别播种到骨和软骨层中,并在体外1周培养后,将BMSC-支架构建体植入山羊铰接模型中。我们的结果表明,支架展示了良好的生物相容性,植入后24周,股骨髁表面相对较为平坦,由大量的透明质软骨组成。此外,组织学染色揭示了在骨髓内缺陷区域中形成的再生小梁骨。这些结果提供了一种制造生物摩托吸力丘支架的新方法,并证明了它们在软骨缺陷修复中未来临床应用的有效性。

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