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老年人股骨皮质骨各向异性弹性性能及其与成分和微观结构的关系

Anisotropic elastic properties of human femoral cortical bone and relationships with composition and microstructure in elderly.

机构信息

Sorbonne Université, INSERM, CNRS, Laboratoire d'Imagerie Biomédicale (LIB), F-75006 Paris, France.

Univ Lyon, Université Claude Bernard Lyon 1, INSERM, LYOS UMR 1033, F-69008 Lyon, France.

出版信息

Acta Biomater. 2019 May;90:254-266. doi: 10.1016/j.actbio.2019.03.043. Epub 2019 Mar 26.

Abstract

The strong dependence between cortical bone elasticity at the millimetre-scale (mesoscale) and cortical porosity has been evidenced by previous studies. However, bone is an anisotropic composite material made by mineral, proteins and water assembled in a hierarchical structure. Whether the variations of structural and compositional properties of bone affect the different elastic coefficients at the mesoscale is not clear. Aiming to understand the relationships between bone elastic properties and compositions and microstructure, we applied state-of-the-art experimental modalities to assess these aspects of bone characteristics. All elastic coefficients (stiffness tensor of the transverse isotropic bone material), structure of the vascular pore network, collagen and mineral properties were measured in 52 specimens from the femoral diaphysis of 26 elderly donors. Statistical analyses and micromechanical modeling showed that vascular pore volume fraction and the degree of mineralization of bone are the most important determinants of cortical bone anisotropic mesoscopic elasticity. Though significant correlations were observed between collagen properties and elasticity, their effects in bone mesoscopic elasticity were minor in our data. This work also provides a unique set of data exhibiting a range of variations of compositional and microstructural cortical bone properties in the elderly and gives strong experimental evidence and basis for further development of biomechanical models for human cortical bone. STATEMENT OF SIGNIFICANCE: This study reports the relationships between microstructure, composition and the mesoscale anisotropic elastic properties of human femoral cortical bone in elderly. For the first time, we provide data covering the complete anisotropic elastic tensor, the microstructure of cortical vascular porosity, mineral and collagen characteristics obtained from the same or adjacent samples in each donor. The results revealed that cortical vascular porosity and degree of mineralization of bone are the most important determinants of bone anisotropic stiffness at the mesoscale. The presented data gives strong experimental evidence and basis for further development of biomechanical models for human cortical bone.

摘要

先前的研究已经证明,皮质骨在毫米级(细观尺度)的弹性与皮质骨孔隙率之间存在很强的依赖性。然而,骨骼是一种各向异性的复合材料,由矿物质、蛋白质和水按层次结构组装而成。骨骼结构和组成特性的变化是否会影响细观尺度上的不同弹性系数尚不清楚。为了了解骨骼弹性特性与组成和微观结构之间的关系,我们应用最先进的实验手段来评估骨骼特征的这些方面。在 26 位老年供体的股骨骨干中,从 52 个样本中测量了所有弹性系数(各向异性骨骼材料的杨氏模量张量)、血管孔网络结构、胶原蛋白和矿物质特性。统计分析和细观力学模型表明,血管孔体积分数和骨的矿化程度是皮质骨各向异性细观弹性的最重要决定因素。尽管观察到胶原蛋白特性与弹性之间存在显著相关性,但在我们的数据中,它们对骨骼细观弹性的影响较小。这项工作还提供了一组独特的数据,展示了老年人群皮质骨组成和微观结构特性的一系列变化,并为进一步开发人类皮质骨生物力学模型提供了强有力的实验证据和基础。

意义陈述

本研究报告了老年人股骨皮质骨的微观结构、组成与各向异性细观弹性特性之间的关系。首次提供了涵盖完整各向异性弹性张量、皮质血管孔隙微观结构、矿物质和胶原蛋白特性的数据,这些数据均来自于每个供体的相同或相邻样本。结果表明,皮质血管孔隙率和骨的矿化程度是骨骼各向异性细观刚度的最重要决定因素。所提供的数据为进一步开发人类皮质骨生物力学模型提供了强有力的实验证据和基础。

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