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An improved method to assess torsional properties of rodent long bones.

机译:一种评估啮齿动物长骨扭转特性的改进方法。

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Torsion is an important testing modality commonly used to calculate structural properties of long bones. However, the effects of size and geometry must be excluded from the overall structural response in order to compare material properties of bones of different size, age and species. We have developed a new method to analyze torsional properties of bones using actual cross-sectional information and length-wise geometrical variations obtained by micro-computed topographic (microCT) imaging. The proposed method was first validated by manufacturing three rat femurs through rapid prototyping using a plastic with known material properties. The observed variations in calculated torsional shear modulus of the hollow elliptical model of mid-shaft cross-section (Ekeland et al.), multi-prismatic model of five true cross-sections (Levenston et al.) and multi-slice model presented in this study were 96%, -7% and 6% from the actual properties of the plastic, respectively. Subsequently, we used this method to derive relationships expressing torsional properties of rat cortical bone as a function of muCT-based bone volume fraction or apparent density over a range of normal and pathologic bone densities. Results indicate that a regression model of shear modulus or shear strength and bone volume fraction or apparent density described at least 81% of the variation in torsional properties of normal and pathologic bones. Coupled with the structural rigidity analysis technique introduced by the authors, the relationships reported here can provide a non-invasive tool to assess fracture risk in bones affected by pathologies and/or treatment options.
机译:扭转是一种重要的测试方法,通常用于计算长骨的结构特性。但是,必须从整体结构响应中排除尺寸和几何形状的影响,以便比较不同尺寸,年龄和种类的骨骼的材料特性。我们已经开发了一种使用实际横截面信息和通过微计算机地形图(microCT)成像获得的纵向几何变化来分析骨骼的扭转特性的新方法。首先通过使用具有已知材料特性的塑料通过快速原型制造三个大鼠股骨来验证所提出的方法。中轴横截面的空心椭圆模型(Ekeland等),五个真实横截面的多棱柱模型(Levenston等)和多层切片模型在计算的扭转剪切模量中观察到的变化这项研究分别比塑料的实际性能高出96%,-7%和6%。随后,我们使用这种方法来得出在正常和病理性骨密度范围内,大鼠皮质骨的扭转特性随基于muCT的骨体积分数或表观密度而变化的关系。结果表明,剪切模量或剪切强度与骨体积分数或表观密度的回归模型至少描述了正常和病理性骨骼扭转特性变化的81%。结合作者介绍的结构刚度分析技术,此处报道的关系可以提供一种非侵入性的工具来评估受病理和/或治疗选择影响的骨骼的骨折风险。

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