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Development and characterization of a PLGA-HA composite material to fabricate 3D-printed scaffolds for bone tissue engineering

机译:PLGA-HA复合材料制造3D印刷支架骨组织工程的开发与表征

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Additive manufacturing is a rising field in bone tissue engineering. Additive fabrication offers reproducibility, high precision and rapid manufacture of custom patient-specific scaffolds. The development of appropriate composite materials for biomedical applications is critical to reach clinical application of these novel biomaterials. In this work, medical grade poly(lactic-co-glycolic) acid (PLGA) was mixed with hydroxyapatite nanoparticles (nHA) to fabricate 3D porous scaffolds by Fused Deposition Modeling. We have first confirmed that the composite material could be printed in a reproductive manner. Physical characterization demonstrated a low degradation of the material during manufacturing steps and an expected loading and homogeneous distribution of nHA. In vitro biodegradation of the scaffolds showed modifications of morphological and physicochemical properties over time. The composite scaffolds were biocompatible and high cell viability was observed in vitro, as well as a maintain of cell proliferation. As expected, the addition of nHA displayed a positive impact on osteodifferentiation in vitro. Furthermore, a limited inflammatory reaction was observed after subcutaneous implantation of the materials in the rat. Overall, this study suggests that this composite material is suitable for bone tissue engineering applications.
机译:添加剂制造是骨组织工程中的一个上升田。添加剂制造提供了定制患者特异性支架的再现性,高精度和快速制造。用于生物医学应用适当的复合材料的开发对于达到这些新的生物材料的临床应用至关重要。在这项工作中,将医学级聚(乳酸二乙醇酸)酸(PLGGA)与羟基磷灰石纳米颗粒(NHA)混合,通过熔融沉积建模制造3D多孔支架。我们首先证实可以以生殖方式印刷复合材料。物理表征在制造步骤期间表明材料的低降解和NHA的预期载荷和均匀分布。在体外的体外生物降解在时间上显示出形态和物理化学性质的修饰。复合支架是生物相容性的,体外观察到高细胞活力,以及对细胞增殖的维持。正如预期的那样,NHA的添加对体外骨细胞化的积极影响。此外,在皮下植入大鼠中的材料后观察到有限的炎症反应。总体而言,该研究表明,该复合材料适用于骨组织工程应用。

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