Biomechanical analysis of bone mesoscopic structure and mechanical properties of vertebral endplates of degenerated intervertebral discs in rabbits

Q3 Medicine
Bingying Zhao , Yuan Guo , Xushu Zhang , Yibo Zhao , Bin Zhao , Ming Zhang
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Abstract

In previous studies of disc degeneration, the structural and mechanical properties of the endplate were often neglected. In this paper, the station legislation was used to construct an animal model of minor trauma disc degeneration, and the mechanism of disc degeneration was further investigated by observing the changes of mesoscopic structure and developing the mechanical properties of endplate bone.

Twenty-eight 6-month-old Japanese white rabbits were divided into two groups: control group and experimental group. An animal model of intervertebral disc degeneration was established by upright experiment in the experimental group. The bone mesoscopic structures in different areas of each endplate were observed by histological and imaging methods, and the mechanical properties of the endplates were measured by indentation method. The two groups of data were compared by one-way ANOVA.

After the experimental animals stood for 17 weeks, The experimental group showed the characteristics of early disc degeneration. The microstructure of the degenerative group showed that the end plate mineralization degree was higher, the bone mass was larger, and the number and thickness of bone trabeculae were larger. The results of indentation test showed that the mechanical properties of the degeneration group were enhanced, and the lower endplate was obviously enhanced.

We successfully established a model of human disc degeneration with non invasive trauma and more consistent with the process of human disc degeneration through the standing experiment. In the experimental group, the internal structure of the endplate was dense and pore distance was reduced. The change of bone mesoscopic structure further affects the endplate, resulting in the enhancement of the mechanical properties of the endplate after intervertebral disc degeneration. The reduction of the pore distance and the narrowing of the internal channel structure of the endplate also hinder the nutrition supply of the intervertebral disc, which may be the key reason affecting the degeneration of the intervertebral disc. A biomechanical method for investigating the mechanism of intervertebral disc degeneration can be provided in this paper.

兔子退化椎间盘椎体终板的骨中观结构和机械特性的生物力学分析
在以往的椎间盘退变研究中,终板的结构和力学性能往往被忽视。本文利用站立法构建了轻微创伤椎间盘退变的动物模型,并通过观察中观结构的变化和发展终板骨的力学性能,进一步研究了椎间盘退变的机制。实验组通过直立实验建立了椎间盘退变的动物模型。通过组织学和影像学方法观察每个终板不同区域的骨中观结构,并通过压痕法测量终板的力学性能。实验动物站立 17 周后,实验组表现出早期椎间盘退变的特征。退变组的显微结构显示,终板矿化度更高,骨量更大,骨小梁的数量和厚度更大。通过站立实验,我们成功建立了无创创伤的人体椎间盘退变模型,更符合人体椎间盘退变的过程。实验组终板内部结构致密,孔距缩小。骨中观结构的变化进一步影响终板,导致椎间盘退变后终板的力学性能增强。孔距的减少和终板内部通道结构的狭窄也阻碍了椎间盘的营养供应,这可能是影响椎间盘退变的关键原因。本文可为研究椎间盘退变的机制提供一种生物力学方法。
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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来源期刊
Medicine in Novel Technology and Devices
Medicine in Novel Technology and Devices Medicine-Medicine (miscellaneous)
CiteScore
3.00
自引率
0.00%
发文量
74
审稿时长
64 days
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