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The dependence on anatomic site of trabecular bone structure-function relationships.

机译:小梁骨对解剖部位的结构功能关系。

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Trabecular bone is a primary load-bearing tissue of the musculoskeletal system. Density and trabecular architecture are the structural features that govern the apparent mechanical properties, and these features vary greatly between anatomic sites. Understanding the dependence of trabecular bone structure-function relationships on anatomic site is important for the study of age-related bone fragility, including fracture risk assessment and prophylaxis. Study of the site-specificity of these relationships also reveals to what extent the mechanics of the bone adaptation process differs throughout the skeleton. Through a combination of experimental and computational methods, relationships between density, architecture, elastic modulus, and tensile and compressive yield properties were investigated for human trabecular bone from four sites: the vertebra, proximal tibia, femoral greater trochanter, and femoral neck. Mechanical properties were measured along the principal trabecular orientation. Elastic modulus was defined to be consistent with the concave downwards nonlinearity present in the initial portion of the stress-strain curves. Characterization of this nonlinearity identified contributions of rate-dependence, damage accumulation, and large deformations of the trabecular structure. Relationships between density and each of elastic modulus and yield stress depended on anatomic site. This site-dependence was largely attributed to inter-site variations in architectural anisotropy. In contrast, yield strain was relatively insensitive to density and did not depend on the degree of anisotropy. Yield strain was remarkably uniform within each site, but differed across sites. Anatomic sites that displayed lower compressive yield strains were identified as those with a greater propensity to undergo large deformations. Statistical correlations between yield strain and quantitative architectural measures indicated that intra-specimen variations in architecture were as important as mean values for a specimen in explaining the site-dependence of yield strain. The combined ability of density and architecture to capture the inter-site differences in mechanical properties suggests that elastic and yield properties of trabecular tissue do not differ substantially across sites. The relationships developed in this work provide increased precision in predictions of mechanical properties from structural measures. The results also indicate that a complex set of microstructural deformation mechanisms, spanning multiple length scales, are involved in the elastic and yield behavior of human trabecular bone.
机译:小梁骨是肌肉骨骼系统的主要承重组织。密度和小梁结构是控制表观机械性能的结构特征,并且这些特征在解剖部位之间差异很大。了解小梁骨结构功能关系对解剖部位的依赖性对于研究与年龄相关的骨脆性(包括骨折风险评估和预防)非常重要。对这些关系的位点特异性的研究还揭示了整个骨骼中骨骼适应过程的力学在多大程度上不同。通过实验和计算方法的结合,从四个部位(椎骨,胫骨近端,股骨大转子和股骨颈)研究了密度,结构,弹性模量以及拉伸和压缩屈服特性之间的关系。沿主要的小梁方向测量机械性能。弹性模量定义为与应力-应变曲线的初始部分中存在的向下凹的非线性一致。这种非线性的特征表明速率依赖性,损伤积累和小梁结构的大变形的贡献。密度与弹性模量和屈服应力之间的关系取决于解剖部位。这种站点依赖性在很大程度上归因于站点间建筑各向异性的变化。相反,屈服应变对密度相对不敏感,并且不依赖于各向异性程度。每个部位的产量应变非常均匀,但不同部位之间却有所不同。表现出较低的压缩屈服应变的解剖部位被确定为具有较大变形倾向的部位。屈服应变和定量构架测量之间的统计相关性表明,在解释屈服应变的位点依赖性时,试样内部构架的变化与标本的平均值一样重要。密度和结构的结合能力捕获了部位间机械性能的差异,表明小梁组织的弹性和屈服性能在部位之间没有显着差异。在这项工作中发展的关系提供了从结构措施的机械性能预测的精度更高。结果还表明,跨越多个长度尺度的一组复杂的微结构变形机制与人小梁的弹性和屈服行为有关。

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