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The adaptive response of periodontal ligament to orthodontic force loading - a combined biomechanical and biological study.

机译:牙周膜对正畸力负荷的适应性反应-结合生物力学和生物学研究。

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BACKGROUND: The studies on biomechanics of orthodontic tooth movement (OTM) are mainly performed at analytical, tissue and cellular levels. The prime aim of this study was to elucidate the periodontal response to orthodontic force loading by integrating biomechanical and biological approaches. METHODS: We designed and conducted a multilevel study consisting of three parts. (1) At the analytical/theoretical level, 3D finite element (FE) method was used to analyze stress distribution and changing during OTM. (2) At the tissue level, we explored the effects of tensile and compressive forces on the expressions of Type I collagen, matrix metalloproteinases Type I (MMP-1) and tissue inhibitor of metalloproteinase Type I (TIMP-1) in rat's periodontal ligament (PDL) in vivo. (3) At the cellular level, we studied the effects of variant strain patterns and magnitudes on functional expression of rat's osteoblasts in vitro. FINDINGS: (1) In the 3D FE model, the canine tipping and bodily movements showed different ways in stress distribution and degeneration. However, in both tooth movement modalities, tensile zones and compressive zones had similar stress distribution pattern. (2) Tensile and compressive forces imposed different effects on the expressions of Type I collagen, MMP-1 and TIMP-1 in PDL, with Type I collagen and TIMP-1being increased significantly in the tensile zones and MMP-1 being increased significantly in both zones. (3) Differences in strain pattern (dynamic vs. static) and magnitude (light vs. heavy) resulted in different levels of osteoblast's functional expression indicated by alkaline phosphatase (ALP) and osteocalcin (OC). It was found that dynamic loading was more effective for ALP expression whilst static loading was more effective for OC secretion and 3kPa strain force in vitro was optimal for the both. INTERPRETATION: It is suggested that there may exist an optimal force system in both magnitude and pattern of loading that could induce efficient OTM.
机译:背景:正畸牙齿移动(OTM)的生物力学研究主要在分析,组织和细胞水平上进行。这项研究的主要目的是通过整合生物力学和生物学方法来阐明牙周对正畸力负荷的反应。方法:我们设计并进行了包括三个部分的多层次研究。 (1)在分析/理论层面,使用3D有限元(FE)方法分析OTM过程中的应力分布和变化。 (2)在组织水平上,我们研究了拉伸和压缩力对大鼠牙周膜中I型胶原,I型基质金属蛋白酶(MMP-1)和I型金属蛋白酶组织抑制剂(TIMP-1)表达的影响(PDL)体内。 (3)在细胞水平上,我们研究了不同的应变模式和大小对大鼠成骨细胞功能表达的影响。发现:(1)在3D FE模型中,犬的翻倒和身体运动在应力分布和退化方面表现出不同的方式。但是,在两种牙齿运动方式中,拉伸区和压缩区都具有相似的应力分布模式。 (2)拉伸和压缩力对PDL中I型胶原,MMP-1和TIMP-1的表达产生不同的影响,其中I型胶原和TIMP-1在拉伸区显着增加,而MMP-1在PDL中显着增加。两个区域。 (3)应变模式(动态与静态)和大小(轻与重)的差异导致碱性磷酸酶(ALP)和骨钙素(OC)指示成骨细胞功能表达水平不同。发现动态加载对ALP表达更有效,而静态加载对OC分泌更有效,体外3kPa应变力对两者均最佳。解释:建议在大小和载荷模式上都可能存在一个最佳的力系统,该系统可以诱导有效的OTM。

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