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Spatial relationship between bone formation and mechanical stimulus within cortical bone: Combining 3D fluorochrome mapping and poroelastic finite element modelling

机译:骨形成与皮质骨内机械刺激之间的空间关系:结合3D荧光图和多孔弹性有限元建模

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摘要

Bone is a dynamic tissue and adapts its architecture in response to biological and mechanical factors. Here we investigate how cortical bone formation is spatially controlled by the local mechanical environment in the murine tibia axial loading model (C57BL/6). We obtained 3D locations of new bone formation by performing ‘slice and view’ 3D fluorochrome mapping of the entire bone and compared these sites with the regions of high fluid velocity or strain energy density estimated using a finite element model, validated with ex-vivo bone surface strain map acquired ex-vivo using digital image correlation. For the comparison, 2D maps of the average bone formation and peak mechanical stimulus on the tibial endosteal and periosteal surface across the entire cortical surface were created. Results showed that bone formed on the periosteal and endosteal surface in regions of high fluid flow. Peak strain energy density predicted only the formation of bone periosteally. Understanding how the mechanical stimuli spatially relates with regions of cortical bone formation in response to loading will eventually guide loading regime therapies to maintain or restore bone mass in specific sites in skeletal pathologies.
机译:骨骼是一种动态组织,可以根据生物学和机械因素适应其结构。在这里,我们研究了在鼠胫骨轴向负荷模型(C57BL / 6)中如何通过局部机械环境在空间上控制皮质骨的形成。我们通过对整个骨骼进行“切片和查看” 3D荧光染料制图,获得了新骨骼形成的3D位置,并将这些部位与使用有限元模型估算的高流体速度或应变能密度区域进行了比较,并通过离体骨骼进行了验证使用数字图像相关性从体内获取表面应变图。为了进行比较,创建了整个皮质表面上胫骨内膜和骨膜表面上的平均骨形成和峰值机械刺激的二维图。结果表明,在高流量的区域,骨形成在骨膜和骨内膜表面。峰值应变能密度仅预测骨膜的形成。了解机械刺激如何响应于负荷而在空间上与皮质骨形成区域相关联,将最终指导负荷方案治疗,以维持或恢复骨骼病理中特定部位的骨量。

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