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Contributions of trabecular rods of various orientations in determining the elastic properties of human vertebral trabecular bone.

机译:各种方向的小梁杆在确定人类椎骨小梁骨的弹性方面的贡献。

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摘要

Trabecular bone networks consist of two basic microstructural types: plates and rods. Although trabecular rods represent only a small fraction of total bone volume, their existence has important roles in failure initiation and progression. The goal of this study was to quantitatively examine the contributions of trabecular rods in various orientations to the anisotropic elastic moduli of human vertebral trabecular bone. Twenty-one human vertebral trabecular bone specimens were scanned by microcomputed tomography (microCT). A coordinate system of orthotropic axes representing the best elastic orthotropic symmetry was determined for each sample. Individual trabeculae segmentation (ITS), a 3D image analysis technique, was performed to identify each individual trabecular rod and determine its orientation in the orthotropic coordinate system. Next, three rod-removed images were created where longitudinal, oblique, or transverse trabecular rods were removed, respectively, from the original microCT images. The original and three categories of rod-removed images were then converted to finite element (FE) models for evaluation of their elastic moduli and anisotropy. Both the transverse and oblique rod-removal caused significant decreases in all six elastic moduli. However, the removal of longitudinal rods only caused significant changes in E(33), G(23), and G(31) but not in any transverse/in-plane elastic properties (E(11), E(22), and G(12)). The analysis of covariance (ANCOVA) with repeated measures was applied to detect the moduli change in the different models caused by the effects beyond just bone volume loss. The results suggested that the loss of transverse rods induced a significant decrease in in-plane mechanical competence, which was greater than what could be explained only by the associated bone volume loss. In contrast, the reduction in the axial Young's modulus caused by the loss of transverse rods was proportional to the bone volume decrease. Furthermore, the loss of longitudinal rods affected the axial Young's modulus through both bone volume loss and architectural change. With aging, the reduction in in-plane mechanical competence would be magnified by the preferential loss of transverse rods. The predictive ability of bone mineral density, a surrogate of BV/TV in clinical measurements, may reduce more quickly for transverse mechanical properties than for the axial mechanical properties.
机译:骨小梁网络由两种基本的微结构类型组成:板和杆。尽管小梁杆仅占总骨体积的一小部分,但它们的存在在失败的发生和发展中具有重要作用。这项研究的目的是定量检查各种方向上的小梁杆对人类椎体小梁骨各向异性弹性模量的贡献。通过微计算机断层扫描(microCT)扫描二十一个人的椎骨小梁骨标本。为每个样品确定代表最佳弹性正交异性对称性的正交异性轴坐标系。进行了3D图像分析技术的单个小梁分割(ITS),以识别每个单个小梁杆并确定其在正交各向异性坐标系中的方向。接下来,创建了三个移除杆的图像,分别从原始microCT图像中移除了纵向,倾斜或横向小梁杆。然后将原始的和三类去除杆的图像转换为有限元(FE)模型,以评估其弹性模量和各向异性。横杆和斜杆的拆卸均引起所有六个弹性模量的显着降低。但是,移除纵向杆只会引起E(33),G(23)和G(31)的显着变化,而不会引起任何横向/面内弹性特性的变化(E(11),E(22)和G(12))。应用重复测量的协方差分析(ANCOVA)来检测不同模型中的模量变化,这些变化是由不仅仅是骨量损失引起的。结果表明,横向杆的丢失引起平面内机械能力的显着降低,这大于仅由相关的骨体积损失可以解释的幅度。相反,由横向杆的损失引起的轴向杨氏模量的减小与骨体积的减小成比例。此外,纵向杆的损失通过骨体积损失和结构变化影响了轴向杨氏模量。随着年龄的增长,横向杆的优先损失会加剧平面内机械性能的降低。骨矿物质密度的预测能力是临床测量中BV / TV的替代指标,其横向力学性能的降低能力可能比轴向力学性能的降低更快。

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