首页> 外文期刊>Annals of anatomy =: Anatomischer Anzeiger : official organ of the Anatomische Gesellschaft >Numerical investigations of bone remodelling around the mouse mandibular molar primordia
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Numerical investigations of bone remodelling around the mouse mandibular molar primordia

机译:小鼠颌骨磨牙骨膜骨重塑的数值研究

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The formation of the alveolar bone, which houses the dental primordia, and later the roots of tooth, may serve as a model to approach general questions of alveolar bone formation. In this respect, this study aimed to investigate the potential interactions between the alveolar bone formation and tooth eruption by using finite element (FE) methods, and to figure out whether the expanding tooth systems induce shear stresses that lead to alveolar bone formation. 3D geometric surface models were generated from the 3D histological data of the heads of mice (C57 B1/6J) ranging from stages embryonic (E) to postnatal (P) stages E15 to P20 using the reconstruction software 3-Matic. Bone, dentin, enamel and dental follicle around the primordia were generated and converted into 3D FE models. Models were imported into the FE software package MSC.Marc/Mentat. As material parameters of embryonic dentine, pulp, enamel, dental follicle, and bony structures basically are unknown, these were varied from 1% to 100% of the corresponding known material parameters for humans and a sensitivity analysis was performed. Surface loads were applied to the outside surface of dental follicle ranging from 0.1 to 5.0 N/mm(2). The validity of the model was analysed by comparing the activity pattern of the alveolar bone as determined in the histological study with the loading pattern from the numerical analysis. The results show that when varying the surface loads, the distribution of shear stresses remained same, and while varying the material properties of the hard tissues, the location of highest shear stresses remained stable. Comparison of the histologically determined growth regions with the distribution of shear stresses computed in the numerical model showed a very close agreement. The results provide a strong proof to support Blechschmidt's hypothesis that the bone in general is created under the influence of shear forces. (C) 2018 Elsevier GmbH. All rights reserved.
机译:形成牙槽骨的形成,该骨质骨骼,并以后的牙齿根,可以作为接近肺泡骨形成的一般问题的模型。在这方面,本研究旨在通过使用有限元(Fe)方法研究肺泡骨形成和齿喷发之间的潜在相互作用,并弄清楚膨胀齿系统是否诱导导致肺泡骨形成的剪切应力。使用重建软件3-Matic来从从小鼠头部(C57 B1 / 6j)的3D组织学数据从小鼠头部(C57 B1 / 6j)的3D组织学数据产生了从小鼠胚胎(e)的3D组织学数据产生的几何表面模型。骨,牙本质,牙釉质和牙科卵泡周围的基金会被产生并转换为3D Fe模型。模型被导入FE软件包MSC.MARC / Mentat。作为胚胎牙本质,纸浆,搪瓷,牙科卵泡和骨结构基本上未知的材料参数,这些是从对应的相应已知的材料参数的1%至100%变化,并进行敏感性分析。将表面载荷施加到牙卵囊的外表面积为0.1至5.0n / mm(2)。通过从数值分析中与装载图案中测定的组织学研究中测定的肺泡骨的活性模式进行分析模型的有效性。结果表明,当改变表面负荷时,剪切应力的分布仍然相同,而在改变硬组织的材料特性的同时,最高剪切应力的位置保持稳定。组织学确定的生长区域与数值模型中计算的剪切应力分布的比较显示了非常密切的协议。结果提供了强有力的证据,以支持Blechschmidt的假设,即骨骼通常在剪切力的影响下产生。 (c)2018年Elsevier GmbH。版权所有。

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