Advanced Biomaterials and Tissue Engineering Center, Huazhong University of Science and Technology, Wuhan 430074, PR China; Department of Biomedical Engineering, Huazhong University of Science and Technology, Wuhan 430074, PR China.
Department of Chemical and Biomolecular Engineering, Seoul National University of Science and Technology, Nowon-gu, Seoul 139-743, Republic of Korea.
Biomaterials. 2017 Aug;137:37-48. doi: 10.1016/j.biomaterials.2017.05.021. Epub 2017 May 12.
Osteochondral defects cannot be adequately self-repaired due to the presence of the sophisticated hierarchical structure and the lack of blood supply in cartilage. Thus, one of the major challenges remaining in this field is the structural design of a biomimetic scaffold that satisfies the specific requirements for osteochondral repair. To address this hurdle, a bio-inspired multilayer osteochondral scaffold that consisted of the poly(ε-caprolactone) (PCL) and the hydroxyapatite (HA)/PCL microspheres, was constructed via selective laser sintering (SLS) technique. The SLS-derived scaffolds exhibited an excellent biocompatibility to support cell adhesion and proliferation in vitro. The repair effect was evaluated by implanting the acellular multilayer scaffolds into osteochondral defects of a rabbit model. Our findings demonstrated that the multilayer scaffolds were able to induce articular cartilage formation by accelerating the early subchondral bone regeneration, and the newly formed tissues could well integrate with the native tissues. Consequently, the current study not only achieves osteochondral repair, but also suggests a promising strategy for the fabrication of bio-inspired multilayer scaffolds with well-designed architecture and gradient composition via SLS technique.
由于软骨存在复杂的层次结构和缺乏血液供应,因此软骨的骨软骨缺陷不能得到充分的自我修复。因此,该领域仍然存在的主要挑战之一是设计满足骨软骨修复特定要求的仿生支架的结构。为了解决这个难题,通过选择性激光烧结(SLS)技术构建了一种由聚己内酯(PCL)和羟基磷灰石(HA)/PCL 微球组成的仿生多层骨软骨支架。SLS 衍生的支架表现出良好的生物相容性,能够支持细胞在体外黏附和增殖。通过将脱细胞多层支架植入兔模型的骨软骨缺损中来评估修复效果。我们的研究结果表明,多层支架能够通过加速早期软骨下骨再生来诱导关节软骨形成,并且新形成的组织可以与天然组织很好地整合。因此,本研究不仅实现了骨软骨修复,而且还通过 SLS 技术为具有良好设计的结构和梯度组成的仿生多层支架的制造提供了有前途的策略。