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The role of spinal instrumentation in augmenting lumbar posterolateral fusion.

机译:脊柱器械在增强腰椎后外侧融合中的作用。

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STUDY DESIGN: Using a sheep model, clinically practical posterolateral intertransverse process fusion was successfully achieved and biomechanically tested to determine the load-sharing environment provided by spinal instrumentation and posterolateral fusion mass following solid arthrodesis. OBJECTIVES: To quantify the in vivo load-sharing capacity of spinal instrumentation on augmenting the posterolateral intertransverse fusion. The hypothesis was that transpedicular screw fixation maintains the biomechanical contribution to the posterolateral fusion stability even after successful arthrodesis because of its providing anterior and middle column support. SUMMARY OF BACKGROUND DATA: Although many previous studies have documented the biological and biomechanical advantages of posterolateral fusion, it is known that posterolateral fusion without spinal instrumentation allowed significant remaining motion at the fused segment even after the solid arthrodesis. Whether spinal instrumentation, especially transpedicular screw fixation, augments in vivo posterolateral fusion stability after solid arthrodesis has not been previously investigated. METHODS: Radiographic, macroscopic, and biomechanical analyses of a posterolateral intertransverse process fusion model were performed on 18 sheep at 4 months postoperatively. The load-sharing contribution of the spinal instrumentation was calculated based on the stability with or without spinal instrumentation tested in five loading modalities. Histomorphometry of the vertebral body spanned by spinal instrumentation provided the information regarding the biological effect of the load-sharing capacity of spinal instrumentation on bone remodeling. RESULTS: All sheep who received posterolateral intertransverse process fusion demonstrated successful solid arthrodesis and high biomechanical quality of the posterolateral fusion mass when compared to previous posterolateral fusion models. The significant difference in stiffness between fixation and subsequent fixation removalwas observed in flexion, despite maintaining high lateral bending stiffness equivalent to the fixation (with instrumentation) level. This significant load-sharing contribution of spinal instrumentation detected in flexion corresponded to 27% when compared to the fixation level. The qualitative and quantitative bone histology showed 64% of the volumetric density of bone in the fixation group when compared to that of the sham group as well as narrow trabeculae and reduced connection of trabeculae. CONCLUSIONS: The continuance in support offered by transpedicular screw fixation was assured in vivo after the solid posterolateral intertransverse process fusion. This was clearly demonstrated under eccentric loads in a sagittal plane, suggesting that transpedicular screw fixation was able to provide anterior and middle column support and resist eccentric loads.
机译:研究设计:使用绵羊模型,成功实现了临床实用的后外侧横突融合,并进行了生物力学测试,以确定在固定关节后由脊柱器械和后外侧融合块提供的负荷分担环境。目的:为了量化脊柱器械在增强后外侧横向融合中的体内负荷分担能力。假说是,即使椎弓根螺钉固定提供了前柱和中柱支撑,即使在成功的关节固定术之后,经椎弓根螺钉固定仍可保持生物力学对后外侧融合稳定性的贡献。背景数据的总结:尽管许多先前的研究已经证明了后外侧融合的生物学和生物力学优势,但众所周知,即使没有进行硬脊柱固定,没有脊柱器械的后外侧融合也可以使融合段显着保留运动。之前尚未研究过脊柱器械,特别是经椎弓根螺钉固定是否能增强体内关节固定后的体内后外侧融合稳定性。方法:在术后4个月对18只绵羊进行了后外侧横突融合模型的射线照相,宏观和生物力学分析。脊柱器械的载荷分担贡献是根据在五种载荷方式下测试或不试验脊柱器械的稳定性计算得出的。脊柱器械跨越椎体的组织形态计量学提供了有关脊柱器械负荷分担能力对骨重塑的生物学效应的信息。结果:与先前的后外侧融合模型相比,所有接受后外侧横向融合的绵羊均表现出成功的固体关节固定和后外侧融合块的高生物力学质量。尽管保持了与固定(使用器械)水平相当的高侧向弯曲刚度,但在屈曲中观察到了固定与随后的固定去除之间在刚度上的显着差异。与固定水平相比,屈曲中检测到的脊柱器械的显着负载分担贡献相当于27%。定性和定量的骨组织学显示,与假手术组,狭窄的小梁和减少的小梁连接相比,固定组的骨体积密度为64%。结论:固体后外侧横突融合后,体内经蒂椎弓根螺钉固定提供了持续的支持。这在矢状面中的偏心载荷下得到了清楚的证明,这表明经椎弓根螺钉固定能够提供前柱和中柱支撑并抵抗偏心载荷。

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