Von Forell Gregory A, Stephens Trevor K, Samartzis Dino, Bowden Anton E
*Department of Mechanical Engineering, Brigham Young University, Provo, UT †Department of Orthopaedics and Traumatology, The University of Hong Kong, Pokfulam, Hong Kong, SAR, China.
Spine (Phila Pa 1976). 2015 Aug 1;40(15):1165-72. doi: 10.1097/BRS.0000000000000982.
A nonlinear finite element study of a lumbar spine with different "patterns" of multilevel intervertebral disc degeneration.
To determine how different patterns of multilevel disc degeneration influence the biomechanical behavior of the lumbar spine.
Because of the complex etiology of low back pain, it is often difficult to identify the specific factors that contribute to the symptoms of a particular patient. Disc degeneration is associated with the development of low back pain, but its presence is not always synonymous with symptoms. However, studies have suggested that "patterns" of disc degeneration may provide insight into such pain generation rather than the overall presence of degenerative changes. Specifically, individuals with contiguous multilevel disc degeneration have been shown to exhibit higher presence and severity of low back pain than patients with skipped-level disc degeneration (i.e., healthy discs located in between degenerated discs).
In this study, the biomechanical differences between these patterns were analyzed using a nonlinear finite element model of the lumbar spine. Thirteen separate "patterns" of disc degeneration were evaluated using the model and simulated under normal physiological loading conditions in each of the primary modes of spinal motion.
The results showed that stresses and forces of the surrounding ligaments, facets, and pedicles at certain vertebral levels of the spine were generally lower in skipped-level disc degeneration cases than in the contiguous multilevel disc degenerations cases even when the skipped level contained more degenerated discs.
To our knowledge, this is the first study to illustrate the biomechanics of specific patterns of disc degeneration of the lumbar spine. Using a multilevel disc degeneration model, our study provides insights as to why various patterns of disc degeneration throughout the lumbar spine may affect motion and soft tissue structures as well that may have bearing in the clinical pathway of pain generation.
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对具有不同“模式”的多节段椎间盘退变的腰椎进行非线性有限元研究。
确定多节段椎间盘退变的不同模式如何影响腰椎的生物力学行为。
由于腰痛病因复杂,往往难以确定导致特定患者症状的具体因素。椎间盘退变与腰痛的发生有关,但其存在并不总是等同于症状。然而,研究表明,椎间盘退变的“模式”可能有助于深入了解疼痛的产生,而不仅仅是退变变化的整体存在情况。具体而言,与跳跃式椎间盘退变(即退变椎间盘之间存在健康椎间盘)的患者相比,连续多节段椎间盘退变的个体表现出更高的腰痛发生率和严重程度。
在本研究中,使用腰椎的非线性有限元模型分析这些模式之间的生物力学差异。使用该模型评估了13种不同的椎间盘退变“模式”,并在脊柱运动的每种主要模式下的正常生理负荷条件下进行模拟。
结果表明,即使跳跃节段包含更多退变椎间盘,在跳跃式椎间盘退变病例中,脊柱某些椎体水平周围韧带、小关节和椎弓根的应力和力通常低于连续多节段椎间盘退变病例。
据我们所知,这是第一项阐述腰椎特定模式椎间盘退变生物力学的研究。通过使用多节段椎间盘退变模型,我们的研究深入探讨了腰椎不同模式的椎间盘退变为何可能影响运动和软组织结构,以及这可能与疼痛产生的临床途径有何关联。
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