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Biomechanical evaluation of a dynamic pedicle screw fixation device.

机译:动态椎弓根螺钉固定装置的生物力学评估。

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BACKGROUND: Recent innovations in dynamic devices have promised a reduction in stress shielding, protection of adjacent segment degeneration, and decreased implant failure. However, there have been few studies comparing the biomechanical properties of a rigid device in comparison to a dynamic posterior fixation device. The purpose of this study was to compare the immediate stability of a new dynamic pedicle screw fixation device with an equivalent rigid device. METHODS: Six thoracolumbar cadaver spines (T10-L4) were fixed in a biomechanical testing frame. Pure moments of 10Nm were loaded in six directions: flexion, extension, right and left lateral bending, and right and left axial rotation. For each spine, four different stages were tested: intact, destabilization of the middle segment, fixation with the dynamic device, and fixation with the rigid device. Ranges of motion were measured using stereophotogrammetry. The specimens with each device were then subjected to flexion-compression loading for five cycles on a MTS 858 Universal Testing Machine. The average stiffness of the last three cycles was recorded. FINDINGS: Both dynamic and rigid devices were found to provide stability for the injured segment in flexion-extension and lateral bending. In axial rotation, the devices could restore the stability to levels similar to those in an intact spine. Results also indicated a slight increase in range of motion in flexion-extension and significant reduction in stiffness of flexion-compression with the dynamic device (P < 0.01), in comparison to the rigid device. INTERPRETATION: The dynamic device offers a system that may alter favorably the movement and load transmission of a spinal motion segment without sacrificing construct stability.
机译:背景:动态设备的最新创新已承诺减少应力屏蔽,保护相邻节段变性和减少植入失败。然而,很少有研究将刚性装置与动态后固定装置相比的生物力学特性进行比较。这项研究的目的是比较新型动态椎弓根螺钉固定装置与等效刚性装置的即时稳定性。方法:将六个胸腰椎尸体棘(T10-L4)固定在生物力学测试架中。 10Nm的纯力矩在六个方向上加载:弯曲,伸展,左右弯曲以及左右轴向旋转。对于每个脊柱,测试了四个不同阶段:完整,中间段不稳定,使用动态装置固定和使用刚性装置固定。使用立体摄影测量法测量运动范围。然后,在MTS 858通用测试机上,将带有每个设备的样品经受屈曲压缩载荷五个循环。记录最后三个循环的平均刚度。结果发现,动态和刚性装置都可以为受伤的节段提供屈伸和横向弯曲的稳定性。在轴向旋转中,这些装置可以将稳定性恢复到与完整脊柱相似的水平。结果还表明,与刚性装置相比,动态装置的屈伸运动范围略有增加,而屈曲压缩的刚度显着降低(P <0.01)。解释:动态装置提供的系统可以在不牺牲结构稳定性的情况下,有利地改变脊柱运动节段的运动和载荷传递。

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