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Large-scale microstructural simulation of load-adaptive bone remodeling in whole human vertebrae

机译:整个人椎骨中适应负载的骨重塑的大规模微观结构模拟

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摘要

Identification of individuals at risk of bone fractures remains challenging despite recent advances in bone strength assessment. In particular, the future degradation of the microstructure and load adaptation has been disregarded. Bone remodeling simulations have so far been restricted to small-volume samples. Here, we present a large-scale framework for predicting microstructural adaptation in whole human vertebrae. The load-adaptive bone remodeling simulations include estimations of appropriate bone loading of three load cases as boundary conditions with microfinite element analysis. Homeostatic adaptation of whole human vertebrae over a simulated period of 10 years is achieved with changes in bone volume fraction (BV/TV) of less than 5 %. Evaluation on subvolumes shows that simplifying boundary conditions reduces the ability of the system to maintain trabecular structures when keeping remodeling parameters unchanged. By rotating the loading direction, adaptation toward new loading conditions could be induced. This framework shows the possibility of using large-scale bone remodeling simulations toward a more accurate prediction of microstructural changes in whole human bones.
机译:尽管最近在骨强度评估方面取得了进展,但是确定具有骨折风险的个体仍然具有挑战性。特别地,已经忽略了微观结构的未来退化和负载适应性。迄今为止,骨骼重塑模拟仅限于小体积样本。在这里,我们提出了一个用于预测整个人类椎骨微结构适应的大规模框架。负载自适应骨骼重塑仿真包括使用微有限元分析对三种负载情况作为边界条件的适当骨骼负载进行估算。在10年的模拟时间内,整个人体椎骨的稳态适应性通过骨体积分数(BV / TV)的变化小于5%来实现。对子体积的评估表明,当保持重塑参数不变时,简化边界条件会降低系统维护小梁结构的能力。通过旋转加载方向,可以诱导对新的加载条件的适应。该框架显示了使用大规模骨骼重塑模拟来更准确地预测整个人类骨骼微结构变化的可能性。

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