基于同步辐射断层扫描的椎体终板加载有限元分析揭示了结构特征的功能作用

Jishizhan Chen, Alissa L Parmenter, Aikta Sharma, Elis Newham, Eral Bele, Sebastian Marussi, Andrew A Pitsillides, Nick J Terrill, Himadri S Gupta, Peter D Lee
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引用次数: 0

摘要

下背痛与脊椎生物力学有关,而脊椎内板(VEP)在脊椎负荷传递和分布中起着关键作用。同步加速器计算机断层扫描(sCT)可以详细观察完整的 VEP 在接近生理负荷下的微观结构,如果与数字体积相关(DVC)相结合,则可以纳米级分辨率量化三维(3D)应变场。在此,我们将 DVC 数据与基于图像的有限元模型(FEM)进行空间耦合,以确定鼠 VEPs 的材料特性。然后将该模型扩展到不同运动和疾病条件下的 VEP 生物力学研究,发现 VEP 突起在不同运动条件下对负荷吸收和再分配非常重要,并预测异常椎间盘(IVD)应力可能是骨质疏松症和椎间盘突出症相关 IVD 退化的基础。我们的研究验证了使用 DVC 提高有限元预测准确性的有效性,并强调这些方法可扩展到大型动物和人类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synchrotron Tomography-Based Finite Element Analysis of Vertebral Endplate Loading Reveals Functional Roles for Architectural Features
Lower back pain is linked to vertebral biomechanics, with vertebral endplates (VEPs) playing a key role in vertebral load transfer and distribution. Synchrotron computed tomography (sCT) allows for detailed visualisation of the microstructure of intact VEPs under near-physiological loads and, when coupled with digital volume correlation (DVC), can be used to quantify three-dimensional (3D) strain fields with nanoscale resolution. Herein, we spatially couple DVC data and an image-based finite element model (FEM) to determine the material properties of murine VEPs. This model was then extended to investigate VEP biomechanics under different motions and disease conditions to reveal that VEP protrusions are important for load absorption and redistribution under different motions and predicted that abnormal intervertebral disc (IVD) stress may underpin osteoporosis- and pycnodysostosis-related IVD degeneration. Our study validates the efficacy of using DVC to increase the accuracy of FEM predictions and highlights that these methodologies may be scalable to large animals and humans.
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