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定制具有微观拓扑结构的多孔 Ti6Al4V 支架的增材制造以调节骨组织工程中的细胞行为。

Customized additive manufacturing of porous Ti6Al4V scaffold with micro-topological structures to regulate cell behavior in bone tissue engineering.

机构信息

National Engineering Research Center for Biomaterials, Sichuan University, 610064 Chengdu, China; School of Biomedical Engineering, Sichuan University, 610064 Chengdu, China.

School of Mechanical Engineering, Sichuan University, 610065 Chengdu, China.

出版信息

Mater Sci Eng C Mater Biol Appl. 2021 Jan;120:111789. doi: 10.1016/j.msec.2020.111789. Epub 2020 Dec 10.

Abstract

Scaffold micro-topological structure plays an important role in the regulation of cell behavior in bone tissue engineering. This paper investigated the effect of 3D printing parameters on the scaffold micro-topological structure and its subsequent cell behaviors. By setting of different 3D printing parameters, i.e., the 3D printing laser power, the scanning interval and the thickness of sliced layers, the highest resolution up to 20 μm can be precisely fabricated. Scaffolds' characterization results indicated that the laser power affected the forming quality of melt tracks, the scanning interval distance determined the size of regularly arranged pores, and the thickness of sliced layers affected the morphological and structural characteristics. By regulating of these printing parameters, customized porous Ti6Al4V scaffold with varied hierarchical micro-topological structure can be obtained. In vitro cell culturing results showed that the regular porous micro-topological structure of scaffolds with the aperture close to cell size was more suitable for cell proliferation and adhesion. The overall distribution of cells on regular porous scaffolds was similar to the orderly arrangement of cultivated crops in the field. The findings suggested that customization of the scaffold provided an effective way to regulate cellular behavior and biological properties.

摘要

支架的微观拓扑结构在骨组织工程中对细胞行为的调控起着重要作用。本文研究了 3D 打印参数对支架微观拓扑结构及其后续细胞行为的影响。通过设置不同的 3D 打印参数,即 3D 打印激光功率、扫描间隔和切片层的厚度,可以精确地制造出最高分辨率可达 20μm 的支架。支架的表征结果表明,激光功率影响熔覆轨迹的成型质量,扫描间隔距离决定了规则排列孔的大小,而切片层的厚度则影响形态和结构特征。通过调节这些打印参数,可以获得具有不同层次微观拓扑结构的定制多孔 Ti6Al4V 支架。体外细胞培养结果表明,孔径接近细胞大小的规则多孔微拓扑结构支架更有利于细胞增殖和黏附。细胞在规则多孔支架上的整体分布类似于田间有序排列的农作物。研究结果表明,支架的定制为调控细胞行为和生物特性提供了一种有效途径。

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