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Microsphere-based selective laser sintering for building macroporous bone scaffolds with controlled microstructure and excellent biocompatibility

机译:基于微球的选择性激光烧结,用于建立具有受控微观结构和优异的生物相容性的大孔骨支架

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摘要

Fabrication of bulk biomaterials with controlled structures and excellent properties is increasingly important in tissue engineering, but remains a major challenge in the current stage. Herein we used selective laser sintering (SLS) to construct a series of three-dimensional (3D) bone scaffolds with uniform multi-scaled porosity, moderate mechanical properties as well as good biocompatibility. As starting architectural units for SLS, the pure microspheres of polycaprolactone (PCL) and the composite microspheres of PCL and hydroxyapatite (HA) were firstly synthesized via a modified solvent evaporation method, respectively. Our findings showed that the as-prepared microspheres exhibited the uniform size and monodispersity. Moreover, the microsphere-based 3D scaffolds generated by SLS technique showed a multi-scaled porous structure, and adequate mechanical features. Both in vitro and in vivo evaluations further demonstrated that the resultant SLS-derived scaffolds can not only manipulate multiple stem cell behaviors including promoting cell adhesion, supporting cell proliferation and inducing cell differentiation in vitro, but also showed an excellent histocompatibility and induced the vascularization of newly formed tissue in vivo. Consequently, our current study suggests a feasible and effective protocol for fabricating new biomimetic bone biomaterials via SLS technique, also paves a new way for other bulk biomaterials. (C) 2015 Elsevier B.V. All rights reserved.
机译:在组织工程中制备具有受控结构的散装生物材料和优异的性能越来越重要,但在当前阶段仍然是一个重大挑战。在此,我们使用选择性激光烧结(SLS)构建一系列三维(3D)骨支架,具有均匀的多缩放孔隙率,适度的机械性能以及良好的生物相容性。作为SLS的起始架构单元,首先通过改性溶剂蒸发方法首先合成PCL和羟基磷灰石(HA)的多己内酯(PCL)的纯微球和PCL和羟基磷灰石(HA)的复合微球。我们的研究结果表明,制备的微球表现出均匀的大小和单反叠体。此外,SLS技术产生的基于微球的3D支架显示了多尺度的多孔结构,以及足够的机械特征。体外和体内评价进一步证明了所得的SLS衍生的支架不仅可以操纵多个干细胞行为,包括促进细胞粘附,支持细胞增殖和体外诱导细胞分化,而且还显示出优异的组织相容性并诱导血管化新形成的组织在体内。因此,我们目前的研究表明,通过SLS技术制造新的仿生物骨生物材料的可行和有效的方案,还为其他散装生物材料铺平了一种新的方式。 (c)2015 Elsevier B.v.保留所有权利。

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