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Testing Pullout Strength of Pedicle Screw Using Synthetic Bone Models: Is a Bilayer Foam Model a Better Representation of Vertebra?

机译:使用合成骨模型测试椎弓根螺钉的抗拉强度:双层泡沫模型是否能更好地代表椎骨?

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Study Design A biomechanical study. Purpose A new biomechanical model of the vertebra has been developed that accounts for the inhomogeneity of bone and the contribution of the pedicle toward the holding strength of a pedicle screw. Overview of Literature Pullout strength studies are typically carried out on rigid polyurethane foams that represent the homogeneous vertebral framework of the spine. However, the contribution of the pedicle region, which contributes to the inhomogeneity in this framework, has not been considered in previous investigations. Therefore, we propose a new biomechanical model that can account for the vertebral inhomogeneity, especially the contribution of the pedicles toward the pullout strength of the pedicle screw. Methods A bilayer foam model was developed by joining two foams representing the pedicle and the vertebra. The results of the pullout strength tests performed on the foam models were compared with those from the tests performed on the cadaver lumbar vertebra. Results Significant differences ( p 0.05) were observed between the pullout strength of the pedicle screw in extremely osteoporotic (0.18±0.11 kN), osteoporotic (0.37±0.14 kN), and normal (0.97±0.4 kN) cadaver vertebra. In the monolayer model, significant differences ( p 0.05) in the pullout strength of pedicle screws between osteoporotic (0.85±0.08 kN) and extremely osteoporotic bone models (0.94±0.08 kN), but there was a significant difference ( p 0.05) in pullout strength between cadaver and bilayer foam model in normal bones. Conclusions The new synthetic bone model that reflects the contribution of the pedicles to the pullout strength of the pedicle screws could provide a more efficacious means of testing pedicle-screw pullout strength. The bilayer model can match the pullout strength value of normal lumbar vertebra bone whereas the monolayer foam model was able to match that of the extremely osteoporotic lumbar vertebra.
机译:研究设计生物力学研究。目的已经开发出一种新的椎骨生物力学模型,该模型考虑了骨骼的不均匀性以及椎弓根对椎弓根螺钉保持力的贡献。文献综述拉伸强度研究通常是在硬质聚氨酯泡沫塑料上进行的,该泡沫塑料代表脊柱的均质椎骨框架。但是,先前的研究并未考虑椎弓根区域的作用,这会导致该框架的不均匀性。因此,我们提出了一种新的生物力学模型,可以解释椎骨的不均匀性,尤其是椎弓根对椎弓根螺钉的拔出强度的贡献。方法通过结合代表椎弓根和椎骨的两种泡沫建立双层泡沫模型。将在泡沫模型上进行的拉出强度测试的结果与在尸体腰椎上进行的测试的结果进行了比较。结果在极度骨质疏松(0.18±0.11 kN),骨质疏松(0.37±0.14 kN)和正常(0.97±0.4 kN)尸体椎骨中,椎弓根螺钉的拔出强度之间存在显着差异(p <0.05)。在单层模型中,骨质疏松(0.85±0.08 kN)和极度骨质疏松的骨模型(0.94±0.08 kN)之间的椎弓根螺钉拉出强度存在显着差异(p 0.05),但拉出存在显着差异(p 0.05)正常骨骼中尸体和双层泡沫模型之间的强度。结论反映出椎弓根对椎弓根螺钉抗拉强度的贡献的新的合成骨模型可以为测试椎弓根螺钉的抗拔强度提供更有效的手段。双层模型可以匹配正常腰椎骨的拔出强度值,而单层泡沫模型可以匹配极度骨质疏松的腰椎的拔出强度值。

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