[Relationship between fluid shear stress in alveolar bone under orthodontic forces and bone remodeling rate].

Bin Wu, Kexin Hu, Fan Yang, Yi Lu, Di Jiang, Yang Yi, Bin Yan
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Abstract

Objectives: This study explores the differences in fluid flow within alveolar cancellous bone at various sites under orthodontic forces and elucidates the relationship between fluid shear stress and bone remodeling. These fin-dings lay the groundwork for understanding the biomechanical mechanisms of orthodontic tooth movement.

Methods: Stress relaxation tests were performed on human alveolar bone samples to determine material parameters by using the Prony series. An inverse model of alveolar bone was then developed for numerical simulations of fluid-structure interactions to calculate fluid flow within cancellous bone. Meanwhile, a rat model of tooth movement was established to investigate variations in bone remodeling speeds across different regions.

Results: The microstructural distribution of cancellous alveolar bone was similar in humans and rats. The bone volume fraction and trabecular thickness gradually decreased from root cervical region to root apical region, while the trabecular space gradually increased. Under the influence of orthodontic forces, fluid shear stress within cancellous bone showed spatial variability across different levels, with the highest shear stress occurring at the root apical region, ranging from 0 to 0.936 6 Pa. Additionally, the rat model of tooth movement indicated that bone remodeling occurred more rapidly at the root apical region.

Conclusions: Fluid stimulation has a remarkable effect on al-veolar bone remodeling, causing changes in the structure of alveolar bone and ultimately regulating the speed of structu-ral remodeling.

[正畸力作用下牙槽骨流体剪切应力与骨重塑率的关系]。
目的:本研究探讨正畸力作用下不同部位牙槽骨松质骨内流体流动的差异,并阐明流体剪切应力与骨重塑的关系。这些发现为了解正畸牙齿移动的生物力学机制奠定了基础。方法:采用proony系列对人牙槽骨样品进行应力松弛试验,确定材料参数。然后建立了牙槽骨的逆模型,用于流体-结构相互作用的数值模拟,以计算松质骨内的流体流动。同时,建立大鼠牙齿运动模型,研究不同区域骨重塑速度的变化。结果:人和大鼠松质牙槽骨的显微结构分布相似。骨体积分数和骨小梁厚度从根颈区到根尖区逐渐减小,而骨小梁间距逐渐增大。在正畸力的影响下,松质骨内的流体剪切应力在不同程度上呈现空间变异性,最大剪切应力发生在根尖区域,范围为0 ~ 0.936 6 Pa。此外,大鼠牙齿运动模型表明,在根尖区域骨重塑发生得更快。结论:液体刺激对牙槽骨重塑有显著影响,引起牙槽骨结构的改变,最终调节牙槽骨结构重塑的速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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