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Effects of loading frequency on the functional adaptation of trabeculae predicted by bone remodeling simulation.

机译:加载频率对骨重建模拟预测的小梁功能适应性的影响。

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摘要

The process of bone remodeling is regulated by metabolic activities of many bone cells. While osteoclasts and osteoblasts are responsible for bone resorption and formation, respectively, activities of these cells are believed to be controlled by a mechanosensory system of osteocytes embedded in the extracellular bone matrix. Several experimental and theoretical studies have suggested that the strain-derived interstitial fluid flow in lacuno-canalicular porosity serves as the prime mover for bone remodeling. Previously, we constructed a mathematical model for trabecular bone remodeling that interconnects the microscopic cellular activities with the macroscopic morphological changes in trabeculae through the mechanical hierarchy. This model assumes that fluid-induced shear stress acting on osteocyte processes is a driving force for bone remodeling. The validity of this model has been demonstrated with a remodeling simulation using a two-dimensional trabecular model. In this study, to investigate the effects of loading frequency, which is thought to be a significant mechanical factor in bone remodeling, we simulated morphological changes of a three-dimensional single trabecula under cyclic uniaxial loading with various frequencies. The results of the simulation show the trabecula reoriented to the loading direction with the progress of bone remodeling. Furthermore, as the imposed loading frequency increased, the diameter of the trabecula in the equilibrium state was enlarged by remodeling. These results indicate that our simulation model can successfully evaluate the relationship between loading frequency and trabecular bone remodeling.
机译:骨骼重塑的过程受许多骨骼细胞的代谢活动调节。尽管破骨细胞和成骨细胞分别负责骨吸收和形成,但是这些细胞的活性被认为是由嵌入细胞外骨基质中的骨细胞的机械感官系统控制的。几项实验和理论研究表明,在泪小管孔中,应变产生的组织液流动是骨骼重塑的原动力。以前,我们为小梁骨重构建立了一个数学模型,该模型通过机械层次将微观细胞活动与小梁的宏观形态变化联系在一起。该模型假定流体诱导的剪切应力作用于骨细胞过程是骨重塑的驱动力。该模型的有效性已通过使用二维小梁模型的重塑仿真得到证明。在这项研究中,为了研究被认为是骨骼重建中重要机械因素的加载频率的影响,我们模拟了在不同频率的循环单轴加载下三维单根小梁的形态变化。仿真结果表明,随着骨重塑的进展,小梁向着载荷方向重新定向。此外,随着施加的加载频率的增加,处于平衡状态的小梁的直径通过重塑而增大。这些结果表明,我们的仿真模型可以成功评估加载频率与小梁骨重塑之间的关系。

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