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基于图像的椎间盘有限元模型的力学行为的几何决定因素。

Geometric determinants of the mechanical behavior of image-based finite element models of the intervertebral disc.

机构信息

Boston University, Boston, Massachusetts, USA.

University of Delaware, Newark, Delaware, USA.

出版信息

J Orthop Res. 2024 Jun;42(6):1343-1355. doi: 10.1002/jor.25788. Epub 2024 Jan 21.

Abstract

The intervertebral disc is an important structure for load transfer through the spine. Its injury and degeneration have been linked to pain and spinal fractures. Disc injury and spine fractures are associated with high stresses; however, these stresses cannot be measured, necessitating the use of finite element (FE) models. These models should include the disc's complex structure, as changes in disc geometry have been linked to altered mechanical behavior. However, image-based models using disc-specific structures have yet to be established. This study describes a multiphasic FE modeling approach for noninvasive estimates of subject-specific intervertebral disc mechanical behavior based on medical imaging. The models (n = 22) were used to study the influence of disc geometry on the predicted global mechanical response (moments and forces), internal local disc stresses, and tractions at the interface between the disc and the bone. Disc geometry was found to have a strong influence on the predicted moments and forces on the disc (R = 0.69-0.93), while assumptions regarding the side curvature (bulge) of the disc had only a minor effect. Strong variability in the predicted internal disc stresses and tractions was observed between the models (mean absolute differences of 5.1%-27.7%). Disc height had a systematic influence on the internal disc stresses and tractions at the disc-to-bone interface. The influence of disc geometry on mechanics highlights the importance of disc-specific modeling to estimate disc injury risk, loading on the adjacent vertebral bodies, and the mechanical environment present in disc tissues.

摘要

椎间盘是脊柱传递负荷的重要结构。其损伤和退变与疼痛和脊柱骨折有关。椎间盘损伤和脊柱骨折与高应力有关;然而,这些应力无法测量,因此需要使用有限元(FE)模型。这些模型应包括椎间盘的复杂结构,因为椎间盘几何形状的变化与机械行为的改变有关。然而,基于特定于椎间盘的结构的基于图像的模型尚未建立。本研究描述了一种基于医学成像的多相 FE 建模方法,用于对特定于个体的椎间盘机械行为进行非侵入性估计。这些模型(n=22)用于研究椎间盘几何形状对预测的全局机械响应(力矩和力)、椎间盘内部局部应力和椎间盘与骨之间界面处的牵引力的影响。发现椎间盘几何形状对椎间盘上预测的力矩和力有很强的影响(R=0.69-0.93),而对椎间盘侧曲率(隆起)的假设只有很小的影响。模型之间观察到预测的内部椎间盘应力和牵引力存在很强的可变性(平均绝对差异为 5.1%-27.7%)。椎间盘高度对椎间盘-骨界面处的内部椎间盘应力和牵引力有系统的影响。椎间盘几何形状对力学的影响强调了椎间盘特异性建模对于估计椎间盘损伤风险、相邻椎体的载荷以及椎间盘组织中存在的力学环境的重要性。

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