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Decoupled effects of bone mass, microarchitecture and tissue property on the mechanical deterioration of osteoporotic bones

机译:骨量,微结构和组织特性对骨质疏松性骨机械性退化的解耦作用

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摘要

Based on the theory of composite mechanics, a three-pillar framework "bone mass-microarchitecture-tissue property" instead of "bone mass-bone quality", is proposed to quantitively characterize the mechanical deterioration of osteoporotic cancellous bones related to the three aspects, and accordingly the individual and integrative influences of bone mass, microarchitecture and tissue property on the mechanical properties of cancellous bones are investigated via the mu CT-based finite element method (FEM) simulations of bone samples from healthy and ovariectomy-induced osteoporosis mice. Comparisons among the healthy, mild osteoporotic and severe osteoporotic bones clearly show that the healthy bones have a larger bone volume density and an optimized architecture exhibiting longitudinal superiority able to more efficiently resist the daily loadings which are commonly along their longitudinal direction, while osteoporosis does not only significantly reduce the bone volume density but also greatly deteriorate the microarchitectural topology, resulting in a distinct reduction in the magnitude of effective Young's moduli and a breakdown of the longitudinal superiority as well. Furthermore, through modeling in silico we decoupled the three major factors to probe into their individual effects on the mechanical deterioration of osteoporotic bones. It was found that sole bone loss would exponentially decrease the effective Young's moduli of cancellous bones, microarchitecture plays a dominant role in defining the anisotropic characteristics of bones such as the longitudinal superiority; and change of tissue property seems having a slight and linear influence on the effective Young's moduli of cancellous bones.
机译:基于复合力学理论,提出了三支柱框架“骨质量-微结构-组织特性”而不是“骨质量-骨质量”,以定量表征骨质疏松性松质骨的机械劣化,涉及三个方面,因此,通过基于mu CT的健康和卵巢切除手术引起的骨质疏松症小鼠骨样品的基于有限元方法(FEM)的模拟,研究了骨质量,微结构和组织特性对松质骨力学性能的个体和综合影响。健康,轻度骨质疏松症和严重骨质疏松症骨骼之间的比较清楚地表明,健康的骨骼具有更大的骨体积密度,并且优化的结构具有纵向优势,能够更好地抵抗通常沿其纵向方向的日常负荷,而骨质疏松症却没有它不仅显着降低了骨体积密度,而且还极大地破坏了微体系结构,从而导致有效杨氏模量的显着降低以及纵向优越性的下降。此外,通过计算机模拟,我们将三个主要因素分离,以探究它们对骨质疏松性骨机械退化的单独影响。研究发现,唯一的骨丢失会成倍地降低松质骨的有效杨氏模量,微结构在定义骨头的各向异性特征(例如纵向优势)方面起着主导作用;组织特性的变化似乎对松质骨的有效杨氏模量有轻微的线性影响。

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