The microstructure of porous scaffolds plays a vital role in bone regeneration, but its optimal shape is still unclear. In this study, four kinds of porous titanium alloy scaffolds with similar porosities (65%) and pore sizes (650âμm) and different structures were prepared by selective laser melting. Four scaffolds were implanted into the distal femur of rabbits to evaluate bone tissue growth in vivo. Micro-CT and hard tissue section analyses were performed 6 and 12âweeks after the operation to reveal the bone growth of the porous scaffold. The results show that diamond lattice unit (DIA) bone growth is the best of the four topological scaffolds. Through computational fluid dynamics (CFD) analysis, the permeability, velocity and flow trajectory inside the scaffold structure were calculated. The internal fluid velocity difference of the DIA structure is the smallest, and the trajectory of fluid flow inside the scaffold is the longest, which is beneficial for blood vessel growth, nutrient transport and bone formation. In this study, the mechanism of bone growth in different structures was revealed by in vivo experiments combined with CFD, providing a new theoretical basis for the design of bone scaffolds in the future.
3D printed Ti6Al4V bone scaffolds with different pore structure effects on bone ingrowth.
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作者:Deng Fuyuan, Liu Linlin, Li Zhong, Liu Juncai
| 期刊: | Journal of Biological Engineering | 影响因子: | 6.500 |
| 时间: | 2021 | 起止号: | 2021 Jan 21; 15(1):4 |
| doi: | 10.1186/s13036-021-00255-8 | ||
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