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A multiscale mechanobiological model of bone remodelling predicts site-specific bone loss in the femur during osteoporosis and mechanical disuse

机译:骨重塑的多尺度力学生物学模型预测在骨质疏松症和机械废用期间股骨的特定部位骨丢失

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摘要

We propose a multiscale mechanobiological model of bone remodelling to investigate the site-specific evolution of bone volume fraction across the midshaft of a femur. The model includes hormonal regulation and biochemical coupling of bone cell populations, the influence of the microstructure on bone turnover rate, and mechanical adaptation of the tissue. Both microscopic and tissue-scale stress/strain states of the tissue are calculated from macroscopic loads by a combination of beam theory and micromechanical homogenisation. This model is applied to simulate the spatio-temporal evolution of a human midshaft femur scan subjected to two deregulating circumstances: (i) osteoporosis and (ii) mechanical disuse. Both simulated deregulations led to endocortical bone loss, cortical wall thinning and expansion of the medullary cavity, in accordance with experimental findings. Our model suggests that these observations are attributable to a large extent to the influence of the microstructure on bone turnover rate. Mechanical adaptation is found to help preserve intracortical bone matrix near the periosteum. Moreover, it leads to non-uniform cortical wall thickness due to the asymmetry of macroscopic loads introduced by the bending moment. The effect of mechanical adaptation near the endosteum can be greatly affected by whether the mechanical stimulus includes stress concentration effects or not.
机译:我们提出了一种多尺度的骨骼重塑力学生物学模型,以研究整个股骨中轴骨体积分数的特定部位演变。该模型包括荷尔蒙调节和骨细胞群体的生化耦合,微观结构对骨周转率的影响以及组织的机械适应性。组织的微观和组织尺度的应力/应变状态都是通过结合束理论和微机械均质化从宏观载荷中计算出来的。该模型用于模拟人类中轴股骨扫描在两种失调情况下的时空演变:(i)骨质疏松和(ii)机械废用。根据实验结果,这两种模拟的失调导致皮质内骨丢失,皮质壁变薄和髓腔扩大。我们的模型表明,这些观察结果在很大程度上归因于微观结构对骨周转率的影响。发现机械适应有助于将骨皮质内骨基质保留在骨膜附近。此外,由于弯矩引入的宏观载荷的不对称性,导致皮质壁厚度不均匀。机械刺激是否包括应力集中效应会极大地影响内膜附近机械适应的效果。

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