Association between mechanical stress and bone remodeling.

K Tanne, T Nagataki, S Matsubara, J Kato, Y Terada, T Sibaguchi, E Tanaka, M Sakuda
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Abstract

Stress patterns and levels were analyzed by use of the three-dimensional finite element method. Three-dimensional models were constructed for the human upper central incisor (1205 nodes and 920 elements) and the sheep metacarpus (240 nodes and 128 elements). Orthodontic and orthopedic forces were applied to the tooth and the bone, simulating orthodontic tooth movement and experimental loading test for the bone. Three principal stresses were determined in the alveolar bone and the sheep long bone. The following results were obtained. 1. Stress distributions in the lateral alveolar bone were similar to those with bone deformation from cantilever bending mode. On the medial surface of the alveolar bone, a bending stress was observed, however, remaining stresses exhibited changes corresponding to those in the PDL produced by tipping displacement of the tooth. 2. In the sheep long bone, tensile and compressive stresses were induced on the dorsal and volar sides, respectively. The magnitude of stresses was greatest at the mid-diaphyseal region. Compressive and tensile stresses were related with bone resorption and apposition. The magnitude of principal stresses was almost proportional to dimensional changes of the bone at the mid-diaphyseal region. Bone remodeling in the long bone is related with mechanical stress, principal stress in particular, indicating that remodeling of the alveolar bone may be induced by application of orthodontic force in addition to conventional change of the bone adjacent to the PDL. Thus, it is shown that mechanical stress in living structures may be a trigger to induce biological remodeling of bones.

机械应力与骨重塑之间的关系。
采用三维有限元法对其应力形态和水平进行了分析。建立了人上中切牙(1205个节点,920个单元)和羊掌骨(240个节点,128个单元)的三维模型。在牙齿和骨骼上施加正畸和矫形力,模拟正畸牙齿的运动和骨骼的实验载荷试验。在牙槽骨和羊长骨中确定了三个主要应力。得到了以下结果:1. 侧牙槽骨的应力分布与悬臂弯曲模式下的骨变形相似。在牙槽骨的中间表面,观察到弯曲应力,然而,剩余的应力表现出与牙齿倾斜位移产生的PDL相应的变化。2. 在羊长骨的背侧和掌侧分别施加拉应力和压应力。应力的大小在骨干中部区域最大。压应力和拉应力与骨吸收和附着有关。主应力的大小几乎与骨干中部骨的尺寸变化成正比。长骨的骨重塑与机械应力,特别是主应力有关,这表明除了常规的PDL相邻骨的改变外,正畸力的应用可能会引起牙槽骨的重塑。因此,研究表明,活体结构中的机械应力可能是诱导骨骼生物重塑的触发因素。
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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