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首页> 外文期刊>Tissue engineering, Part A >In vitro and animal study of novel nano-hydroxyapatite/poly(epsilon-caprolactone) composite scaffolds fabricated by layer manufacturing process.
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In vitro and animal study of novel nano-hydroxyapatite/poly(epsilon-caprolactone) composite scaffolds fabricated by layer manufacturing process.

机译:通过层制造工艺制备的新型纳米羟基磷灰石/聚ε-己内酯复合支架的体外和动物研究。

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The purpose of this study was to propose a computer-controllable scaffold structure made by a layer manufacturing process (LMP) with addition of nano- or micro-sized particles and to investigate the effects of particle size in vitro. In addition, the superiority of this LMP method over the conventional scaffolds made by salt leaching and gas forming process was investigated through animal study. Using the LMP, we have created a new nano-sized hydroxyapatite/poly(epsilon-caprolactone) composite (n-HPC) scaffold and a micro-sized hydroxyapatite/poly(epsilon-caprolactone) composite (m-HPC) scaffold for bone tissue engineering applications. The scaffold macropores were well interconnected, with a porosity of 73% and a pore size of 500 microm. The compressive modulus of the n-HPC and m-HPC scaffolds was 6.76 and 3.18 MPa, respectively. We compared the cellular responses to the two kinds of scaffolds. Both n-HPC and m-HPC exhibited good in vitro biocompatibility. Attachment and proliferation of mesenchymal stem cells were better on the n-HPC than on the m-HPC scaffold. Moreover, significantly higher alkaline phosphatase activity and calcium content were observed on the n-HPC than on the m-HPC scaffold. In an animal study, the LMP scaffolds enhanced bone formation, owing to their well-interconnected pores. Radiological and histological examinations confirmed that the new bony tissue had grown easily into the entire n-HPC scaffold fabricated by LMP. We suggest that the well-interconnected pores in the LMP scaffolds might encourage cell attachment, proliferation, and migration to stimulate cell functions, thus enhancing bone formation in the LMP scaffolds. This study shows that bioactive and biocompatible n-HPC composite scaffolds prepared using an LMP have potential applications in bone tissue engineering.
机译:这项研究的目的是提出一种由计算机控制的支架结构,该结构是通过添加纳米或微米级颗粒的层制造工艺(LMP)制成的,并研究了体外粒径的影响。此外,通过动物研究,研究了该LMP方法相对于通过盐浸和气体形成工艺制成的传统支架的优越性。使用LMP,我们创建了一种新的用于骨组织的纳米级羟基磷灰石/聚ε-己内酯复合材料(n-HPC)支架和一个微米级羟基磷灰石/聚ε-己内酯复合材料(m-HPC)支架工程应用。支架大孔相互连接良好,孔隙率为73%,孔径为500微米。 n-HPC和m-HPC支架的压缩模量分别为6.76和3.18 MPa。我们比较了细胞对两种支架的反应。 n-HPC和m-HPC均表现出良好的体外生物相容性。间充质干细胞的附着和增殖在n-HPC上优于在m-HPC支架上。此外,n-HPC上观察到的碱性磷酸酶活性和钙含量明显高于m-HPC支架。在一项动物研究中,LMP支架由于其良好连通的毛孔而增强了骨骼的形成。放射学和组织学检查证实,新的骨组织已轻松长成LMP制成的整个n-HPC支架。我们建议LMP支架中的良好连通的孔可能会促进细胞附着,增殖和迁移,从而刺激细胞功能,从而增强LMP支架中的骨形成。这项研究表明,使用LMP制备的具有生物活性和生物相容性的n-HPC复合支架在骨组织工程中具有潜在的应用。

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