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首页> 外文期刊>ACS nano >Collagen Fiber Orientation Is Coupled with Specific Nano-Compositional Patterns in Dark and Bright Osteons Modulating Their Biomechanical Properties
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Collagen Fiber Orientation Is Coupled with Specific Nano-Compositional Patterns in Dark and Bright Osteons Modulating Their Biomechanical Properties

机译:胶原纤维取向与深色和明亮的骨架上的特定纳米组成模式加上调节它们的生物力学性质

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摘要

Bone continuously adapts to its mechanical environment by structural reorganization to maintain mechanical strength. As the adaptive capabilities of bone are portrayed in its nano- and microstructure, the existence of dark and bright osteons with contrasting preferential collagen fiber orientation (longitudinal and oblique-angled, respectively) points at a required tissue heterogeneity that contributes to the excellent fracture resistance mechanisms in bone. Dark and bright osteons provide an exceptional opportunity to deepen our understanding of how nanoscale tissue properties influence and guide fracture mechanisms at larger length scales. To this end, a comprehensive structural, compositional, and mechanical assessment is performed using circularly polarized light microscopy, synchrotron nanocomputed tomography, focused ion beam/scanning electron microscopy, quantitative backscattered electron imaging, Fourier transform infrared spectroscopy, and nanoindentation testing. To predict how the mechanical behavior of osteons is affected by shifts in collagen fiber orientation, finite element models are generated. Fundamental disparities between both osteon types are observed: dark osteons are characterized by a higher degree of mineralization along with a higher ratio of inorganic to organic matrix components that lead to higher stiffness and the ability to resist plastic deformation under compression. On the contrary, bright osteons contain a higher fraction of collagen and provide enhanced ductility and energy dissipation due to lower stiffness and hardness.
机译:骨骼通过结构重组不断适应其机械环境,以保持机械强度。由于骨的适应能力体现在其纳米结构和微观结构上,因此,深色和明亮的骨具有相反的优先胶原纤维取向(分别为纵向和斜角),这就指向了所需的组织异质性,这有助于骨中优异的抗折机制。深色和明亮的骨提供了一个极好的机会,可以加深我们对纳米级组织特性如何影响和指导更大长度范围内的骨折机制的理解。为此,使用圆偏振光显微镜、同步加速器纳米计算机断层扫描、聚焦离子束/扫描电子显微镜、定量背散射电子成像、傅里叶变换红外光谱和纳米压痕测试,进行全面的结构、成分和机械评估。为了预测胶原纤维方向的改变如何影响骨的力学行为,我们建立了有限元模型。观察到两种骨单位类型之间的根本差异:深色骨单位的特点是矿化程度更高,无机和有机基质成分的比例更高,从而导致更高的刚度和抵抗压缩下塑性变形的能力。相反,亮骨含有更高比例的胶原蛋白,由于硬度和硬度较低,因此具有更好的延展性和能量耗散。

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