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Fulcrum assisted soft stabilization system: a new concept in the surgical treatment of degenerative low back pain.

机译:支点辅助软稳定系统:退行性下腰痛的外科治疗新概念。

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STUDY DESIGN: An experimental study on cadaver spine and spine model for biomechanical evaluation of a novel dynamic stabilization device. OBJECTIVES: First, to test the hypothesis that in dynamic stabilization of a lumbar spine using pedicle screws and ligament, addition of a fulcrum in front of the ligament can unload the disc. Second, to determine the relationship between the length and stiffness of the fulcrum and the ligament on disc unloading, lordosis and motion preservation. SUMMARY OF BACKGROUND DATA: Activity related low back pain may be attributable to abnormal disc loading or abnormal movement. Spinal fusion addresses both the mechanisms, but it has limitations. Soft stabilization with Graf ligament restricts abnormal movement but increases the disc pressure. The Dynesys system uses a plastic cylinder around the ligament to prevent overloading the disc, but it restricts extension and loses lordosis. METHODS: A novel dynamic stabilization system (fulcrum assisted soft stabilization or FASS) was developed in which a flexible fulcrum was placed in front of a ligament between the pedicle screws. It was hypothesized that the fulcrum should transform the compressive force of a ligament behind into a distraction force in front and unload the disc. Three spine models were developed using wooden blocks for vertebral bodies and neoprene rubber of different hardness for disc. Their load-deformation character was tested and compared with that of the cadaver spine in a spine tester. The spine model with the closest load-deformation property to cadaver spine was then tested for the effect of a FASS system, consisting of high density polythene rod as fulcrums and rubber "O" rings as ligaments. The disc pressure in the spine models were recorded with strain gauge in the center. RESULTS: Application of ligaments alone across the pedicle screws increased the disc pressure, produced a lordosis, and reduced the range of motion. Application of fulcrums reduced the disc pressure and maintained the lordosis. Increasing the fulcrum length resulted in progressive unloading of the disc but increased stiffness of the motion segment. As the fulcrum length approximated the height of the motion segment, the lordosis was lost, and the disc was completely unloaded. Decreasing the lateral bending stiffness of the fulcrum had minimal effect on disc unloading and motion-segment stiffness. CONCLUSION: The novel FASS system can unload the disc, control the range of motion, and maintain lordosis. These parameters may be controlled with a suitable combination of ligament and fulcrum system. The study provides an indication toward the desirable biomechanical properties of the fulcrum and ligament for future development of a clinically applicable prototype.
机译:研究设计:尸体脊柱和脊柱模型用于新型动态稳定装置生物力学评估的实验研究。目的:首先,要检验以下假设,即使用椎弓根螺钉和韧带动态稳定腰椎时,在韧带前添加支点可以使椎间盘卸载。其次,确定支点的长度和刚度与韧带在椎间盘卸载,脊柱前凸和运动保持方面的关系。背景数据摘要:与活动有关的下背部疼痛可能归因于椎间盘加载异常或运动异常。脊柱融合解决了这两种机制,但有局限性。带有格拉夫韧带的软稳定可限制异常运动,但会增加椎间盘压力。 Dynesys系统在韧带周围使用塑料圆柱体,以防止椎间盘超载,但它会限制伸直并失去脊柱前凸。方法:开发了一种新型的动态稳定系统(支点辅助软稳定或FASS),其中在椎弓根螺钉之间的韧带前放置了一个柔性支点。假设支点应将后面的韧带的压缩力转换成前面的牵引力,并卸下椎间盘。开发了三种脊椎模型,分别用木块制造椎体和使用不同硬度的氯丁橡胶制造椎间盘。测试了它们的载荷变形特性,并在脊柱测试仪中将其与尸体脊柱进行了比较。然后测试具有与尸体脊柱最接近的变形特性的脊柱模型的FASS系统的效果,该系统由高密度聚乙烯棒作为支点,橡胶“ O”形环作为韧带组成。用中央的应变仪记录脊柱模型中的椎间盘压力。结果:在椎弓根螺钉上单独施加韧带会增加椎间盘压力,产生前凸,并减少活动范围。支点的应用降低了椎间盘的压力并保持了脊柱前凸。增大支点长度会导致椎间盘逐渐卸载,但运动节段的刚度会增加。当支点长度接近运动段的高度时,脊柱前凸丢失,并且椎间盘完全卸载。降低支点的横向弯曲刚度对椎间盘卸载和运动段刚度的影响最小。结论:新颖的FASS系统可以卸载椎间盘,控制运动范围,并保持脊柱前凸。这些参数可以通过韧带和支点系统的适当组合来控制。该研究为支点和韧带的理想生物力学特性提供了指示,为将来可临床开发的原型的开发提供了指示。

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