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Microfibril Orientation Dominates the Microelastic Properties of Human Bone Tissue at the Lamellar Length Scale

机译:微原纤维取向主宰人体骨组织的microelastic属性在层状长度尺度

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摘要

The elastic properties of bone tissue determine the biomechanical behavior of bone at the organ level. It is now widely accepted that the nanoscale structure of bone plays an important role to determine the elastic properties at the tissue level. Hence, in addition to the mineral density, the structure and organization of the mineral nanoparticles and of the collagen microfibrils appear as potential key factors governing the elasticity. Many studies exist on the role of the organization of collagen microfibril and mineral nanocrystals in strongly remodeled bone. However, there is no direct experimental proof to support the theoretical calculations. Here, we provide such evidence through a novel approach combining several high resolution imaging techniques: scanning acoustic microscopy, quantitative scanning small-Angle X-ray scattering imaging and synchrotron radiation computed microtomography. We find that the periodic modulations of elasticity across osteonal bone are essentially determined by the orientation of the mineral nanoparticles and to a lesser extent only by the particle size and density. Based on the strong correlation between the orientation of the mineral nanoparticles and the collagen molecules, we conclude that the microfibril orientation is the main determinant of the observed undulations of microelastic properties in regions of constant mineralization in osteonal lamellar bone. This multimodal approach could be applied to a much broader range of fibrous biological materials for the purpose of biomimetic technologies.
机译:骨骼组织的弹性特性决定了骨骼在器官水平上的生物力学行为。现在已被广泛接受的是,骨的纳米级结构在确定组织水平的弹性方面起着重要的作用。因此,除了矿物质密度,矿物质纳米颗粒和胶原微纤维的结构和组织似乎是控制弹性的潜在关键因素。关于胶原微纤维和矿物质纳米晶体在强重塑骨中的组织作用,已有许多研究。但是,没有直接的实验证据来支持理论计算。在这里,我们通过结合几种高分辨率成像技术的新颖方法提供了此类证据:扫描声学显微镜,定量扫描小角X射线散射成像和同步辐射计算机断层扫描。我们发现整个骨质骨的弹性的周期性调节基本上是由矿物纳米颗粒的方向决定的,而在较小程度上仅由粒径和密度决定。基于矿物纳米颗粒的取向与胶原分子之间的强相关性,我们得出结论,微纤维的取向是在骨骼状层状骨中恒定矿化区域中观察到的微弹性特性起伏的主要决定因素。出于仿生技术的目的,这种多峰方法可应用于更广泛的纤维生物材料。

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