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骨牙周韧带牙纤维关节的生物力学。

Biomechanics of a bone-periodontal ligament-tooth fibrous joint.

机构信息

Division of Biomaterials and Bioengineering, Department of Preventive and Restorative Dental Sciences, University of California, San Francisco, San Francisco, CA 94143, United States.

出版信息

J Biomech. 2013 Feb 1;46(3):443-9. doi: 10.1016/j.jbiomech.2012.11.010. Epub 2012 Dec 7.

Abstract

This study investigates bone-tooth association under compression to identify strain amplified sites within the bone-periodontal ligament (PDL)-tooth fibrous joint. Our results indicate that the biomechanical response of the joint is due to a combinatorial response of the constitutive properties of organic, inorganic, and fluid components. Second maxillary molars within intact maxillae (N=8) of 5-month-old rats were loaded with a μ-XCT-compatible in situ loading device at various permutations of displacement rates (0.2, 0.5, 1.0, 1.5, 2.0 mm/min) and peak reactionary load responses (5, 10, 15, 20 N). Results indicated a nonlinear biomechanical response of the joint, in which the observed reactionary load rates were directly proportional to displacement rates (velocities). No significant differences in peak reactionary load rates at a displacement rate of 0.2mm/min were observed. However, for displacement rates greater than 0.2mm/min, an increasing trend in reactionary rate was observed for every peak reactionary load with significant increases at 2.0mm/min. Regardless of displacement rates, two distinct behaviors were identified with stiffness (S) and reactionary load rate (LR) values at a peak load of 5 N (S(5 N)=290-523 N/mm) being significantly lower than those at 10 N (LR(5 N)=1-10 N/s) and higher (S(10 N-20 N)=380-684 N/mm; LR(10 N-20 N)=1-19 N/s). Digital image correlation revealed the possibility of a screw-like motion of the tooth into the PDL-space, i.e., predominant vertical displacement of 35 μm at 5 N, followed by a slight increase to 40 μm at 10 N and 50 μm at 20 N of the tooth and potential tooth rotation at loads above 10 N. Narrowed and widened PDL spaces as a result of tooth displacement indicated areas of increased apparent strains within the complex. We propose that such highly strained regions are "hot spots" that can potentiate local tissue adaptation under physiological loading and adverse tissue adaptation under pathological loading conditions.

摘要

本研究通过对牙齿在受压状态下与牙槽骨的关联性进行研究,以确定在牙周韧带(PDL)-牙纤维连接处骨质中应变放大的部位。我们的研究结果表明,关节的生物力学响应是由有机、无机和流体成分的组成特性的组合响应引起的。5 月龄大鼠完整上颌骨内的第二磨牙(N=8)通过 μ-XCT 兼容的原位加载装置,在不同位移速率(0.2、0.5、1.0、1.5、2.0mm/min)和峰值反作用力响应(5、10、15、20N)的各种排列方式下进行加载。结果表明,关节呈现出非线性的生物力学响应,观察到的反作用力速率与位移速率(速度)成正比。在 0.2mm/min 的位移速率下,观察到的峰值反作用力速率没有显著差异。然而,对于大于 0.2mm/min 的位移速率,随着每一个峰值反作用力的增加,反作用力速率呈现出增加的趋势,在 2.0mm/min 时显著增加。无论位移速率如何,在峰值负载为 5N 时(S(5N)=290-523N/mm),刚度(S)和反作用力速率(LR)的值与在峰值负载为 10N 时(LR(5N)=1-10N/s)和更高时(S(10N-20N)=380-684N/mm;LR(10N-20N)=1-19N/s)有明显的区别。数字图像相关揭示了牙齿在 PDL 空间中可能发生螺旋运动的可能性,即 5N 时牙齿的垂直位移主要为 35μm,然后在 10N 时略微增加到 40μm,在 20N 时增加到 50μm,并且在负载超过 10N 时可能发生牙齿旋转。牙齿位移导致的 PDL 空间变窄和变宽表明,在复杂结构中应变明显增加的区域。我们提出,这些应变高度集中的区域是“热点”,可以在生理负荷下促进局部组织适应,在病理负荷条件下促进组织适应不良。

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