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Simulation of fracture healing incorporating mechanoregulation of tissue differentiation and dispersal/proliferation of cells

机译:结合组织分化的机械调节和细胞扩散/增殖的骨折愈合模拟

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Modelling the course of healing of a long bone subjected to loading has been the subject of several investigations. These have succeeded in predicting the differentiation of tissues in the callus in response to a static mechanical load and the diffusion of biological factors. In this paper an approach is presented which includes both mechanoregulation of tissue differentiation and the diffusion and proliferation of cell populations (mesenchymal stem cells, fibroblasts, chondrocytes, and osteoblasts). This is achieved in a three-dimensional poroelastic finite element model which, being poroelastic, can model the effect of the frequency of dynamic loading. Given the number of parameters involved in the simulation, a parameter variation study is reported, and final parameters are selected based on comparison with an in vivo experiment. The model predicts that asymmetric loading creates an asymmetric distribution of tissues in the callus, but only for high bending moments. Furthermore the frequency of loading is predicted to have an effect. In conclusion, a numerical algorithm is presented incorporating both mechanoregulation and evolution of cell populations, and it proves capable of predicting realistic difference in bone healing in a 3D fracture callus.
机译:对长骨承受载荷的愈合过程进行建模已成为多项研究的主题。这些已经成功地预测了响应于静态机械负荷和生物因子的扩散的愈伤组织的分化。在本文中,提出了一种包括组织分化的机械调节以及细胞群(间充质干细胞,成纤维细胞,软骨细胞和成骨细胞)的扩散和增殖的方法。这是在三维多孔弹性有限元模型中实现的,该模型是多孔弹性的,可以对动态载荷频率的影响进行建模。给定模拟中涉及的参数数量,将报告参数变化研究,并根据与体内实验的比较来选择最终参数。该模型预测不对称载荷会在愈伤组织中产生组织的不对称分布,但仅在高弯矩时才会发生。此外,预计加载频率会产生影响。总之,提出了一种数值算法,该算法结合了细胞群的机械调节和进化,并且证明了能够预测3D骨折call中骨愈合的现实差异。

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