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皮质内管网对小鼠骨力学的重要性。

The importance of the intracortical canal network for murine bone mechanics.

机构信息

Institute for Biomechanics, ETH Zurich, Zurich, Switzerland.

出版信息

Bone. 2013 Mar;53(1):120-8. doi: 10.1016/j.bone.2012.11.024. Epub 2012 Dec 3.

Abstract

As shown by recent data bone strength estimation can greatly be improved by including microarchitectural parameters in the analysis. Our previous results showed that intracortical canals (the living space of the vasculature and/or remodeling units) are a major contributor to cortical tissue porosity, and therefore, can be linked to mechanical bone properties. Consequently, the goal of this study was to investigate the importance of the intracortical canal network for murine bone mechanics. To study intracortical canals within murine femoral bone, we used a mouse model, including two mouse strains, C57BL/6J-Ghrhr(lit)/J (B6-lit/+) and C3.B6-Ghrhr(lit)/J (C3.B6-lit/+) representing low and high bone mass, respectively. The intracortical canal network was assessed by synchrotron radiation-based micro-computed tomography and the mechanical bone properties were derived from three-point bending experiments. Multiple linear regression models were built to explain the variation in ultimate force, work to fracture, and stiffness in terms of the morphometric parameters. The power to explain the variation in bone mechanics was increased significantly for most mechanical measures when including morphometric parameters of intracortical canals in addition to macroscopic morphometric measures. Specifically, we could derive generalized (mouse strain-independent) models for ultimate force, where the incorporation of intracortical canals in addition to macroscopic bone measures improved the explained variation in ultimate force considerably, which was confirmed by an increase in adjusted R(2) of 73% and 8% for B6-lit/+ and C3.B6-lit/+, respectively. Further, we observed that the heterogeneity of the morphometric measures for the individual canal branches play an important role for explaining the variation in ultimate force. Finally, the current study provides strong evidence that work to fracture of murine bone, which is triggered critically by microcracks, is affected by intracortical canals. In summary, the study suggests that the intracortical canal network is important for bone mechanics.

摘要

最近的数据表明,通过在分析中纳入微观结构参数,骨强度的估计可以大大提高。我们之前的研究结果表明,皮质内管(脉管系统和/或重塑单元的生存空间)是皮质组织孔隙率的主要贡献者,因此,可以与骨骼力学特性相关联。因此,本研究的目的是研究皮质内管网络对小鼠骨骼力学的重要性。为了研究小鼠股骨中的皮质内管,我们使用了一个小鼠模型,包括两个小鼠品系,C57BL/6J-Ghrhr(lit)/J(B6-lit/+)和 C3.B6-Ghrhr(lit)/J(C3.B6-lit/+),分别代表低骨量和高骨量。通过基于同步辐射的微计算机断层扫描评估皮质内管网络,通过三点弯曲实验得出骨骼力学特性。建立多元线性回归模型,以解释形态计量参数对极限力、断裂功和刚度的变化。当除了宏观形态计量参数之外,还包括皮质内管的形态计量参数时,大多数力学指标的变化解释能力显著提高。具体来说,我们可以得出极限力的广义(与小鼠品系无关)模型,其中除了宏观骨骼测量值之外,加入皮质内管可以大大提高极限力的解释变异,这通过 B6-lit/+和 C3.B6-lit/+的调整 R2 分别增加 73%和 8%得到了证实。此外,我们观察到个体管分支的形态计量参数的异质性对于解释极限力的变化起着重要作用。最后,目前的研究提供了强有力的证据表明,触发微裂纹的小鼠骨骼断裂功受到皮质内管的影响。总之,该研究表明皮质内管网络对骨骼力学很重要。

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