[Simulation research on the influence of regular porous lattice scaffolds on bone growth].

Q4 Medicine
Yutao Men, Lele Wei, Baibing Hu, Pujun Hao, Chunqiu Zhang
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引用次数: 0

Abstract

To assess the implantation effectiveness of porous scaffolds, it is essential to consider not only their mechanical properties but also their biological performance. Given the high cost, long duration and low reproducibility of biological experiments, simulation studies as a virtual alternative, have become a widely adopted and efficient evaluation method. In this study, based on the secondary development environment of finite element analysis software, the strain energy density growth criterion for bone tissue was introduced to simulate and analyze the cell proliferation-promoting effects of four different lattice porous scaffolds under cyclic compressive loading. The biological performance of these scaffolds was evaluated accordingly. The computational results indicated that in the early stages of bone growth, the differences in bone tissue formation among the scaffold groups were not significant. However, as bone growth progressed, the scaffold with a porosity of 70% and a pore size of 900 μm demonstrated markedly superior bone formation compared to other porosity groups and pore size groups. These results suggested that the scaffold with a porosity of 70% and a pore size of 900 μm was most conducive to bone tissue growth and could be regarded as the optimal structural parameter for bone repair scaffold. In conclusion, this study used a visualized simulation approach to pre-evaluate the osteogenic potential of porous scaffolds, aiming to provide reliable data support for the optimized design and clinical application of implantable scaffolds.

规则多孔晶格支架对骨生长影响的模拟研究
评价多孔支架的植入效果,不仅要考虑其力学性能,还要考虑其生物学性能。鉴于生物实验成本高、持续时间长、可重复性低等特点,模拟研究作为一种虚拟替代方法,已成为一种被广泛采用的高效评价方法。本研究基于有限元分析软件二次开发环境,引入骨组织应变能密度生长准则,模拟分析了4种不同晶格多孔支架在循环压缩载荷作用下对细胞增殖的促进作用。对这些支架的生物学性能进行了评价。计算结果表明,在骨生长早期,支架组间骨组织形成差异不显著。然而,随着骨生长的进展,与其他孔隙率组和孔径组相比,孔隙率为70%、孔径为900 μm的支架的骨形成明显优于其他孔隙率组和孔径组。以上结果表明,孔隙率为70%、孔径为900 μm的支架最有利于骨组织生长,可作为骨修复支架的最佳结构参数。综上所述,本研究采用可视化模拟的方法对多孔支架的成骨潜能进行预评估,旨在为可植入支架的优化设计和临床应用提供可靠的数据支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
生物医学工程学杂志
生物医学工程学杂志 Medicine-Medicine (all)
CiteScore
0.80
自引率
0.00%
发文量
4868
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