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Selective laser sintering fabrication of nano-hydroxyapatite/poly-ε-caprolactone scaffolds for bone tissue engineering applications

机译:用于骨组织工程应用的纳米羟基磷灰石/聚ε-己内酯支架的选择性激光烧结制备

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摘要

The regeneration of functional tissue in osseous defects is a formidable challenge in orthopedic surgery. In the present study, a novel biomimetic composite scaffold, here called nano-hydroxyapatite (HA)/poly-ε-caprolactone (PCL) was fabricated using a selective laser sintering technique. The macrostructure, morphology, and mechanical strength of the scaffolds were characterized. Scanning electronic microscopy (SEM) showed that the nano-HA/PCL scaffolds exhibited predesigned, well-ordered macropores and interconnected micropores. The scaffolds have a range of porosity from 78.54% to 70.31%, and a corresponding compressive strength of 1.38 MPa to 3.17 MPa. Human bone marrow stromal cells were seeded onto the nano-HA/PCL or PCL scaffolds and cultured for 28 days in vitro. As indicated by the level of cell attachment and proliferation, the nano-HA/PCL showed excellent biocompatibility, comparable to that of PCL scaffolds. The hydrophilicity, mineralization, alkaline phosphatase activity, and Alizarin Red S staining indicated that the nano-HA/PCL scaffolds are more bioactive than the PCL scaffolds in vitro. Measurements of recombinant human bone morphogenetic protein-2 (rhBMP-2) release kinetics showed that after nano-HA was added, the material increased the rate of rhBMP-2 release. To investigate the in vivo biocompatibility and osteogenesis of the composite scaffolds, both nano-HA/PCL scaffolds and PCL scaffolds were implanted in rabbit femur defects for 3, 6, and 9 weeks. The wounds were studied radiographically and histologically. The in vivo results showed that both nano-HA/PCL composite scaffolds and PCL scaffolds exhibited good biocompatibility. However, the nano-HA/PCL scaffolds enhanced the efficiency of new bone formation more than PCL scaffolds and fulfilled all the basic requirements of bone tissue engineering scaffolds. Thus, they show large potential for use in orthopedic and reconstructive surgery.
机译:骨缺损中功能组织的再生是整形外科的巨大挑战。在本研究中,使用选择性激光烧结技术制造了新型仿生复合支架,这里称为纳米羟基磷灰石(HA)/聚ε-己内酯(PCL)。表征了脚手架的宏观结构,形态和机械强度。扫描电子显微镜(SEM)显示,纳米HA / PCL支架表现出预先设计的,井井有条的大孔和相互连接的微孔。支架的孔隙率范围为78.54%至70.31%,相应的抗压强度为1.38 MPa至3.17 MPa。将人骨髓基质细胞接种到nano-HA / PCL或PCL支架上,并在体外培养28天。如细胞附着和增殖的水平所表明的,纳米HA / PCL与PCL支架相比具有优异的生物相容性。亲水性,矿化,碱性磷酸酶活性和茜素红S染色表明,纳米HA / PCL支架比PCL支架在体外具有更高的生物活性。对重组人骨形态发生蛋白2(rhBMP-2)释放动力学的测量表明,加入nano-HA后,该材料增加了rhBMP-2的释放速率。为了研究复合支架的体内生物相容性和成骨性,将纳米HA / PCL支架和PCL支架都植入兔股骨缺损中3、6和9周。影像学和组织学研究伤口。体内结果表明,纳米HA / PCL复合支架和PCL支架均表现出良好的生物相容性。但是,纳米HA / PCL支架比PCL支架更能提高新骨形成的效率,并满足了骨组织工程支架的所有基本要求。因此,它们在骨科和重建手术中显示出巨大的潜力。

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