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Biological Response of Next-Generation of 3D Ti-6Al-4V Biomedical Devices Using Additive Manufacturing of Cellular and Functional Mesh Structures

机译:使用细胞和功能性网状结构的增材制造的下一代3D Ti-6Al-4V生物医学设备的生物响应

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Motivated by the successful fabrication of patient-specific biomedical implants that can potentially replace hard tissue (bone), particularly knee and hip stems and large femoral intramedullary rods, using additive manufacturing by electron beam melting (Murr et al. Phil. Trans. R. Soc. A 2010; 22:1999-2032), we describe here the combined efforts of engineering and biological sciences as a systemic approach to study osteoblast functions of 3D mesh arrays with particular focus on pore size and the potential to use 3D fabricated porous biomedical devices for bone healing. First, the interconnecting porous architecture of monolithic mesh arrays was conducive to cellular functions including attachment, proliferation, differentiation, and mineralization. The underlying reason is that the fabricated structure provided a channel for initiation of cell migration and impregnation of the mesh structure by cells and tissue leading to generation of mineralized extracellular matrix by differentiating pre-osteoblasts. Second, a parametric study on the interconnecting pore diameter of mesh arrays indicated that the average pore diameters studied (similar to 400-800 mu m) had no apparent effect on the differentiation and mineralization, and influenced only the proliferation phase. Third, from the biomechanical point of view, the cell-invaded and cell-integrated 3D mesh structure and resulted in the superior formation of tissue.
机译:借助成功制造出患者专用生物医学植入物的动机,该植入物可以通过电子束熔化的增材制造来替代硬组织(骨头),尤其是膝关节和髋关节以及大型股骨髓内棒(Murr等,Phil.Trans.R。 Soc。A 2010; 22:1999-2032),我们在这里将工程学和生物科学的共同努力描述为研究3D网格阵列的成骨细胞功能的系统方法,特别关注孔径和使用3D制备的多孔生物医学的潜力骨愈合的设备。首先,整体式网格阵列的互连多孔结构有助于细胞功能,包括附着,增殖,分化和矿化。根本原因是所制造的结构为细胞迁移和细胞和组织的网状结构的浸渍提供了通道,从而通过分化成骨细胞而导致矿化的细胞外基质的产生。其次,对网状阵列互连孔径的参数研究表明,所研究的平均孔径(约400-800μm)对分化和矿化作用没有明显影响,而仅影响增殖相。第三,从生物力学的角度来看,细胞入侵和细胞整合的3D网格结构并导致组织的卓越形成。

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