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首页> 外文期刊>Journal of Korean Neurosurgical Society >Effect of Device Rigidity and Physiological Loading on Spinal Kinematics after Dynamic Stabilization : An In-Vitro Biomechanical Study
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Effect of Device Rigidity and Physiological Loading on Spinal Kinematics after Dynamic Stabilization : An In-Vitro Biomechanical Study

机译:装置刚度和生理负荷对动态稳定后脊柱运动学的影响:一项体外生物力学研究

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Objective To investigate the effects of posterior implant rigidity on spinal kinematics at adjacent levels by utilizing a cadaveric spine model with simulated physiological loading. Methods Five human lumbar spinal specimens (L3 to S1) were obtained and checked for abnormalities. The fresh specimens were stripped of muscle tissue, with care taken to preserve the spinal ligaments and facet joints. Pedicle screws were implanted in the L4 and L5 vertebrae of each specimen. Specimens were tested under 0 N and 400 N axial loading. Five different posterior rods of various elastic moduli (intact, rubber, low-density polyethylene, aluminum, and titanium) were tested. Segmental range of motion (ROM), center of rotation (COR) and intervertebral disc pressure were investigated. Results As the rigidity of the posterior rods increased, both the segmental ROM and disc pressure at L4-5 decreased, while those values increased at adjacent levels. Implant stiffness saturation was evident, as the ROM and disc pressure were only marginally increased beyond an implant stiffness of aluminum. Since the disc pressures of adjacent levels were increased by the axial loading, it was shown that the rigidity of the implants influenced the load sharing between the implant and the spinal column. The segmental CORs at the adjacent disc levels translated anteriorly and inferiorly as rigidity of the device increased. Conclusion These biomechanical findings indicate that the rigidity of the dynamic stabilization implant and physiological loading play significant roles on spinal kinematics at adjacent disc levels, and will aid in further device development.
机译:目的利用模拟生理负荷的尸体脊柱模型研究后种植体刚度对相邻水平脊柱运动学的影响。方法获得5例L3至S1的人体腰椎标本,并检查其是否异常。剥去新鲜标本的肌肉组织,注意保留脊椎韧带和小关节。将椎弓根螺钉植入每个标本的L4和L5椎骨中。样品在0 N和400 N轴向载荷下进行了测试。测试了五个具有不同弹性模量的完整后杆(完整,橡胶,低密度聚乙烯,铝和钛)。研究了运动的分段范围(ROM),旋转中心(COR)和椎间盘压力。结果随着后杆刚度的增加,L4-5时节段ROM和椎间盘压力均降低,而邻近水平时这些值增加。植入物刚度饱和很明显,因为ROM和椎间盘压力仅略微增加,超过了铝的植入物刚度。由于相邻水平的椎间盘压力因轴向载荷而增加,因此表明植入物的刚度会影响植入物与脊柱之间的载荷分担。随着装置的刚度增加,在相邻椎间盘水平处的节段COR向前和向后平移。结论这些生物力学研究结果表明,动态稳定植入物的刚度和生理负荷对相邻椎间盘水平的脊柱运动学起着重要作用,并将有助于进一步的器械开发。

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