首页> 外文期刊>Journal of periodontal research >Reduced functional loads alter the physical characteristics of the bone-periodontal ligament-cementum complex.
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Reduced functional loads alter the physical characteristics of the bone-periodontal ligament-cementum complex.

机译:减少的功能负荷会改变骨-牙周膜-水泥复合物的物理特性。

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BACKGROUND AND OBJECTIVE: Adaptive properties of the bone-periodontal ligament-tooth complex have been identified by changing the magnitude of functional loads using small-scale animal models, such as rodents. Reported adaptive responses as a result of lower loads due to softer diet include decreased muscle development, change in structure-function relationship of the cranium, narrowed periodontal ligament space, and changes in the mineral level of the cortical bone and alveolar jaw bone and in the glycosaminoglycans of the alveolar bone. However, the adaptive role of the dynamic bone-periodontal ligament-cementum complex to prolonged reduced loads has not been fully explained to date, especially with regard to concurrent adaptations of bone, periodontal ligament and cementum. Therefore, in the present study, using a rat model, the temporal effect of reduced functional loads on physical characteristics, such as morphology and mechanical properties and the mineral profiles of the bone-periodontal ligament-cementum complex was investigated. MATERIAL AND METHODS: Two groups of 6-wk-old male Sprague-Dawley rats were fed nutritionally identical food with a stiffness range of 127-158 N/mm for hard pellet or 0.3-0.5 N/mm for soft powder forms. Spatio-temporal adaptation of the bone-periodontal ligament-cementum complex was identified by mapping changes in the following: (i) periodontal ligament collagen orientation and birefringence using polarized light microscopy, bone and cementum adaptation using histochemistry, and bone and cementum morphology using micro-X-ray computed tomography; (ii) mineral profiles of the periodontal ligament-cementum and periodontal ligament-bone interfaces by X-ray attenuation; and (iii) microhardness of bone and cementum by microindentation of specimens at ages 6, 8, 12 and 15 wk. RESULTS: Reduced functional loads over prolonged time resulted in the following adaptations: (i) altered periodontal ligament orientation and decreased periodontal ligament collagen birefringence, indicating decreased periodontal ligament turnover rate and decreased apical cementum resorption; (ii) a gradual increase in X-ray attenuation, owing to mineral differences, at the periodontal ligament-bone and periodontal ligament-cementum interfaces, without significant differences in the gradients for either group; (iii) significantly (p < 0.05) lower microhardness of alveolar bone (0.93 +/- 0.16 GPa) and secondary cementum (0.803 +/- 0.13 GPa) compared with the higher load group insert bone = (1.10 +/- 0.17 and cementum = 0.940 +/- 0.15 GPa, respectively) at 15 wk, indicating a temporal effect of loads on the local mineralization of bone and cementum. CONCLUSION: Based on the results from this study, the effect of reduced functional loads for a prolonged time could differentially affect morphology, mechanical properties and mineral variations of the local load-bearing sites in the bone-periodontal ligament-cementum complex. These observed local changes in turn could help to explain the overall biomechanical function and adaptations of the tooth-bone joint. From a clinical translation perspective, our study provides an insight into modulation of load on the complex for improved tooth function during periodontal disease and/or orthodontic and prosthodontic treatments.
机译:背景与目的:通过使用小型动物模型(例如啮齿动物)改变功能负荷的大小,可以确定骨-牙周韧带-牙齿复合体的适应性。由于较软的饮食而降低了负荷,因此报告的适应性反应包括肌肉发育下降,颅骨结构-功能关系的变化,牙周膜间隙空间变窄以及皮质骨和牙槽颚骨以及骨骼中矿物质含量的变化。牙槽骨的糖胺聚糖。然而,迄今为止,还没有充分解释动态骨-牙周膜-水泥复合物对长期减少负荷的适应作用,尤其是在同时适应骨,牙周膜和牙骨质适应方面。因此,在本研究中,使用大鼠模型,研究了减少的功能负荷对物理特性(如形态和力学性能以及骨-牙周膜-水泥复合物的矿物质剖面)的时间影响。材料与方法:两组6周龄的雄性Sprague-Dawley大鼠在营养上完全相同,硬颗粒为127-158 N / mm,软粉末为0.3-0.5 N / mm。通过绘制以下变化来确定骨-牙周膜-水泥复合物的时空适应性:(i)偏光显微镜观察牙周膜的胶原蛋白取向和双折射,组织化学采用骨和牙骨质适应性,显微术使用骨和牙骨质形态-X射线计算机断层扫描; (ii)通过X射线衰减的牙周膜-胶结物和牙周膜-骨界面的矿物分布; (iii)通过在6、8、12和15周龄时对样品进行显微压痕,获得骨骼和牙骨质的显微硬度。结果:随着时间的推移,功能负荷的减少导致以下适应性变化:(i)牙周韧带方向改变和牙周韧带胶原蛋白双折射降低,表明牙周韧带周转率降低和根尖牙骨质吸收减少; (ii)由于矿物的差异,在牙周膜-骨界面和牙周膜-水泥界面处的X射线衰减逐渐增加,而两组的梯度没有明显差异; (iii)牙槽骨(0.93 +/- 0.16 GPa)和次牙骨质(0.803 +/- 0.13 GPa)的显微硬度明显低于(p <0.05)与较高负荷组插入骨相比(1.10 +/- 0.17和牙骨质)分别在15 wk时= 0.940 +/- 0.15 GPa),这表明载荷对骨骼和牙骨质局部矿化的时间影响。结论:基于这项研究的结果,长时间减少功能负荷的影响可能会不同地影响骨-牙周韧带-水泥复合体中局部承重部位的形态,力学性能和矿物质变化。这些观察到的局部变化反过来可以帮助解释整体的生物力学功能和牙骨关节的适应性。从临床翻译的角度来看,我们的研究为牙周疾病和/或正畸和假牙治疗期间调节复合物负荷以改善牙齿功能提供了见识。

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