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Tissue-level Remodeling Simulations of Cancellous Bone Capture Effects of In Vivo Loading in a Rabbit Model

机译:在兔模型中体内负荷的松质骨捕获效应的组织水平重塑模拟

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摘要

The adaptation of cancellous bone to mechanical stimuli occurs throughout normal skeletal growth and aging, as well as in response to surgery, disease and device implantation. Previously we developed an in vivo cancellous loading model in the distal lateral femur of the rabbit. In response to daily in vivo loading for four weeks, bone mass increased, trabeculae thickened and the apparent modulus of the underlying cancellous bone increased. Here, we simulated our prior in vivo rabbit loading experiment using a cell-based tissue remodeling algorithm () and compared the results to the in vivo experimental data published previously. Cancellous bone tissue was added or removed from the surface of trabeculae in regions of high and low mechanical stimulus, respectively. To examine the effect of material properties on mechanically regulated adaptation, we implemented both a homogeneous material model and a model where the relative density of tissue was lower for new and surface bone tissue compared to interior tissue. The simulations captured the changes in histomorphometric parameters and mechanical properties measured in the in vivo experiment illustrating the ability of computational simulations to predict the effect of mechanically regulated adaptation on cancellous bone histomorphometry and apparent modulus.
机译:松质骨对机械刺激的适应贯穿整个正常骨骼生长和衰老,以及对手术,疾病和装置植入的响应。以前,我们在兔子的股骨远端外侧建立了体内的松质加载模型。在每天四周的体内负荷响应中,骨量增加,小梁增厚,下面的松质骨的表观模量增加。在这里,我们使用基于细胞的组织重塑算法()模拟了我们先前的体内兔加载实验,并将结果与​​之前发表的体内实验数据进行了比较。在高和低机械刺激区域中分别从小梁表面添加或去除松质骨组织。为了检查材料特性对机械调节适应性的影响,我们实施了均质材料模型和新模型和表层骨组织的组织相对密度低于内部组织的模型。该模拟捕获了在体内实验中测量的组织形态学参数和机械性能的变化,从而说明了计算模拟预测机械调节适应对松质骨组织形态学和表观模量的影响的能力。

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