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Comparison of the effects of bilateral posterior dynamic and rigid fixation devices on the loads in the lumbar spine: a finite element analysis

机译:双边后路动力和刚性固定装置对腰椎负重的影响比较:有限元分析

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摘要

A bilateral dynamic stabilization device is assumed to alter favorable the movement and load transmission of a spinal segment without the intention of fusion of that segment. Little is known about the effect of a posterior dynamic fixation device on the mechanical behavior of the lumbar spine. Muscle forces were disregarded in the few biomechanical studies published. The aim of this study was to determine how the spinal loads are affected by a bilateral posterior dynamic implant compared to a rigid fixator which does not claim to maintain mobility. A paired monosegmental posterior dynamic implant was inserted at level L3/L4 in a validated finite element model of the lumbar spine. Both a healthy and a slightly degenerated disc were assumed at implant level. Distraction of the bridged segment was also simulated. For comparison, a monosegmental rigid fixation device as well as the effect of implant stiffness on intersegmental rotation were studied. The model was loaded with the upper body weight and muscle forces to simulate the four loading cases standing, 30° flexion, 20° extension, and 10° axial rotation. Intersegmental rotations, intradiscal pressure and facet joint forces were calculated at implant level and at the adjacent level above the implant. Implant forces were also determined. Compared to an intact spine, a dynamic implant reduces intersegmental rotation at implant level, decreases intradiscal pressure in a healthy disc for extension and standing, and decreases facet joint forces at implant level. With a rigid implant, these effects are more pronounced. With a slightly degenerated disc intersegmental rotation at implant level is mildly increased for extension and axial rotation and intradiscal pressure is strongly reduced for extension. After distraction, intradiscal pressure values are markedly reduced only for the rigid implant. At the adjacent level L2/L3, a posterior implant has only a minor effect on intradiscal pressure. However, it increases facet joint forces at this level for axial rotation and extension. Posterior implants are mostly loaded in compression. Forces in the implant are generally higher in a rigid fixator than in a dynamic implant. Distraction strongly increases both axial and shear forces in the implant. A stiffness of the implant greater than 1,000 N/mm has only a minor effect on intersegmental rotation. The mechanical effects of a dynamic implant are similar to those of a rigid fixation device, except after distraction, when intradiscal pressure is considerably lower for rigid than for dynamic implants. Thus, the results of this study demonstrate that a dynamic implant does not necessarily reduce axial spinal loads compared to an un-instrumented spine.
机译:假设双侧动态稳定装置可以改变脊柱节段的运动和负荷传递,而无意融合该节段。关于后动态固定装置对腰椎机械行为的影响知之甚少。在发表的一些生物力学研究中忽略了肌肉力量。这项研究的目的是确定与不要求保持活动性的刚性固定器相比,双边后路动态植入物如何影响脊柱负荷。在经过验证的腰椎有限元模型中,在L3 / L4级插入一对单节后动力植入物。健康的椎间盘和轻微退化的椎间盘均假定在植入物水平。还模拟了桥接段的分散。为了进行比较,研究了单节段刚性固定装置以及植入物刚度对节段间旋转的影响。该模型加载有上体重和肌肉力,以模拟四种加载情况:直立,30°弯曲,20°延伸和10°轴向旋转。在种植体水平和种植体上方相邻水平处计算节间旋转,椎间盘内压力和小关节力。还确定了植入力。与完整的脊柱相比,动态植入物可降低植入物水平的节间旋转,降低健康椎间盘中用于伸展和站立的椎间盘内压力,并降低植入物水平的小关节力。对于刚性植入物,这些效果更加明显。随着椎间盘的轻微退变,种植体水平的节间旋转会适度增加以进行扩张,而轴向旋转会大大降低,而椎间盘内压力会大大降低以进行扩张。分心后,仅对于刚性植入物,椎间盘内压力值会明显降低。在相邻的水平L2 / L3处,后植入物对椎间盘内压力的影响很小。但是,它在此水平上增加了小关节力以进行轴向旋转和延伸。后植入物大部分以压缩方式加载。通常,刚性固定器中的植入物力要大于动态植入物中的力。牵引力会大大增加植入物中的轴向力和剪切力。大于1,000 N / mm的植入物刚度对节间旋转影响很小。动态植入物的机械作用与刚性固定装置的机械作用相似,不同之处在于,在牵引后,刚性的椎间盘内压力明显低于动态植入物。因此,这项研究的结果表明,与未植入器械的脊柱相比,动态植入器械不一定能减少轴向脊柱负荷。

著录项

  • 来源
    《European Spine Journal》 |2007年第8期|1223-1231|共9页
  • 作者单位

    Biomechanics Laboratory Orthopaedic Hospital Charité—Universitätsmedizin Berlin Campus Benjamin Franklin Hindenburgdamm 30 12203 Berlin Germany;

    Biomechanics Laboratory Orthopaedic Hospital Charité—Universitätsmedizin Berlin Campus Benjamin Franklin Hindenburgdamm 30 12203 Berlin Germany;

    Biomechanics Laboratory Orthopaedic Hospital Charité—Universitätsmedizin Berlin Campus Benjamin Franklin Hindenburgdamm 30 12203 Berlin Germany;

    Biomechanics Laboratory Orthopaedic Hospital Charité—Universitätsmedizin Berlin Campus Benjamin Franklin Hindenburgdamm 30 12203 Berlin Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Lumbar spine; Posterior dynamic implant; Internal fixation device; Finite element method; Biomechanics;

    机译:腰椎;后动力植入物;内固定装置;有限元法;生物力学;

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