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Biomechanical evaluation of a new pedicle screw-based posterior dynamic stabilization device (Awesome Rod System) - a finite element analysis

机译:基于新型椎弓根螺钉的后动态稳定装置(真棒系统)的生物力学评估-有限元分析

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Background Pedicle-screw-based posterior dynamic stabilization devices are designed to alleviate the rate of accelerated degeneration of the vertebral level adjacent to the level of spinal fusion. A new pedicle- screw-based posterior dynamic stabilization device- the Awesome Dynamic Rod System was designed with curve cuts on the rods to provide flexibility. The current study was conducted to evaluate the biomechanical properties of this new device. Methods Finite element models were developed for the intact spine (INT), the Awesome Dynamic Rod Implanted at L4-L5 (AWE), a traditional rigid rod system implanted at L4-L5 along with an interbody cage (FUS), and the Awesome Dynamic Rod System implanted at L4-L5 along with an interbody cage as an adjunct to fusion procedures and extension of dynamic fixation to L3-L4 (AWEFUS). The models were subjected to axial loads and pure moments and evaluated by a hybrid method on range of motion (ROM)s, disc stresses, pedicle screws stresses, and facet joint contact forces. Results FUS sustained the lowest L4-L5 ROM decrement in flexion and torsion. AWE demonstrated the lowest adjacent level ROM increment in all moments except for extension at L3-L4, and AWEFUS showed the greatest ROM increment at L2-L3. AWE demonstrated lowest adjacent segment disc stress in flexion, lateral bending and torsion at L3-L4. AWEFUS showed the highest disc stress increment in flexion, extension, and lateral bending, and the lowest disc stress decrement in torsion at L2-L3. AWE sustained greater adjacent facet joint contact forces than did FUS in extension and lateral bending at L3-L4, and AWEFUS demonstrated the greatest contact forces concentrating at L2-L3. Conclusion The results demonstrate that the Awesome Dynamic Rod System preserved more bridged segment motion than did the traditional rigid rod fixation system except in extension. However, the Awesome Dynamic Rod System bore a greater facet joint contact force in extension. The Awesome Dynamic Rod System did protect the adjacent level of fusion segments, but led to much greater ROM, disc stresses, and facet joint contact forces increasing at the adjacent level of instrumented segments.
机译:背景技术基于椎弓根螺钉的后动态稳定装置被设计成减轻与脊柱融合水平相邻的椎骨水平的加速退化的速率。设计了一种新的基于椎弓根螺钉的后动态稳定装置-Awesome Dynamic Rod System,其杆上具有曲线切口,以提供灵活性。进行了当前的研究,以评估这种新设备的生物力学性能。方法针对完整的脊柱(INT),在L4-L5植入真棒动态棒(AWE),在L4-L5植入传统刚性棒系统以及椎间融合器(FUS)和Awesome Dynamic建立了有限元模型将杆系统与椎间融合器一起植入L4-L5,作为融合程序的附件,并将动态固定扩展到L3-L4(AWEFUS)。这些模型承受轴向载荷和纯力矩,并通过混合方法对运动范围(ROM),椎间盘应力,椎弓根螺钉应力和小平面关节接触力进行评估。结果FUS屈曲和扭转的L4-L5 ROM降幅最低。除了在L3-L4处扩展外,AWE在所有时刻都显示出最低的相邻级别ROM增量,而AWEFUS在L2-L3处显示出最大的ROM增量。 AWE在L3-L4处表现出最低的相邻节段椎间盘应力,包括弯曲,横向弯曲和扭转。 AWEFUS在L2-L3处显示出最大的椎间盘应力弯曲,延伸和横向弯曲增量,以及最小的椎间盘应力扭转减小。 AWE在L3-L4的延伸和横向弯曲方面比FUS承受更大的相邻小关节接触力,并且AWEFUS表现出最大的接触力集中在L2-L3。结论结果表明,除了在延伸方面,真棒动态杆系统比传统的刚性杆固定系统保留了更多的桥接节段运动。但是,超棒动态杆系统在延伸时承受更大的小面接触力。真棒动态棒系统确实保护了融合段的相邻水平,但是导致了更大的ROM,椎间盘应力和小平面关节接触力在仪器化段的相邻水平处增加。

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