Rohlmann A, Zander T, Burra N K, Bergmann G
Biomechanics Laboratory, Orthopedic Hospital, Charité - Universitätsmedizin Berlin, Campus Benjamin Franklin, Hindenburgdamm 20, 12203 Berlin.
Biomed Tech (Berl). 2005 Oct;50(10):343-7. doi: 10.1515/BMT.2005.048.
Interspinous process implants are increasingly used to treat canal stenoses. Little information exists about the effects of implant height and stiffness on the biomechanical behavior of the lumbar spine. Therefore, a three-dimensional nonlinear finite element model of the osseoligamentous lumbar spine (L1 to L5) was created with a slightly degenerated disc at L3/L4. An interspinous implant was inserted at that segment. Implants with different heights and stiffnesses were studied. The model was loaded with the upper body weight and muscle forces to simulate walking and 25 degrees extension. Implant forces are influenced strongly by the height and negligibly by the elastic modulus of the implant. Intersegmental rotation at implant level is markedly reduced, while intradiscal pressure is slightly increased. Implant size and stiffness have only a minor effect on intradiscal pressure. The maximum von Mises stress in the vertebral arch is strongly increased by the implant.
棘突间植入物越来越多地用于治疗椎管狭窄。关于植入物高度和刚度对腰椎生物力学行为的影响,现有信息很少。因此,建立了一个包含L1至L5的骨韧带性腰椎三维非线性有限元模型,L3/L4处有一个轻度退变的椎间盘。在该节段插入一个棘突间植入物。研究了不同高度和刚度的植入物。该模型加载上身重量和肌肉力以模拟行走和25度伸展。植入物力受高度的强烈影响,而受植入物弹性模量的影响可忽略不计。植入物水平处的节段间旋转明显减少,而椎间盘内压力略有增加。植入物尺寸和刚度对椎间盘内压力只有轻微影响。植入物会使椎弓内的最大冯·米塞斯应力大幅增加。