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基于有限元的人体腰椎间盘刚度非线性归一化以考虑其形态。

Finite element based nonlinear normalization of human lumbar intervertebral disc stiffness to account for its morphology.

作者信息

Maquer Ghislain, Laurent Marc, Brandejsky Vaclav, Pretterklieber Michael L, Zysset Philippe K

出版信息

J Biomech Eng. 2014 Jun;136(6):061003. doi: 10.1115/1.4027300.

Abstract

Disc degeneration, usually associated with low back pain and changes of intervertebral stiffness, represents a major health issue. As the intervertebral disc (IVD) morphology influences its stiffness, the link between mechanical properties and degenerative grade is partially lost without an efficient normalization of the stiffness with respect to the morphology. Moreover, although the behavior of soft tissues is highly nonlinear, only linear normalization protocols have been defined so far for the disc stiffness. Thus, the aim of this work is to propose a nonlinear normalization based on finite elements (FE) simulations and evaluate its impact on the stiffness of human anatomical specimens of lumbar IVD. First, a parameter study involving simulations of biomechanical tests (compression, flexion/extension, bilateral torsion and bending) on 20 FE models of IVDs with various dimensions was carried out to evaluate the effect of the disc's geometry on its compliance and establish stiffness/morphology relations necessary to the nonlinear normalization. The computed stiffness was then normalized by height (H), cross-sectional area (CSA), polar moment of inertia (J) or moments of inertia (Ixx, Iyy) to quantify the effect of both linear and nonlinear normalizations. In the second part of the study, T1-weighted MRI images were acquired to determine H, CSA, J, Ixx and Iyy of 14 human lumbar IVDs. Based on the measured morphology and pre-established relation with stiffness, linear and nonlinear normalization routines were then applied to the compliance of the specimens for each quasi-static biomechanical test. The variability of the stiffness prior to and after normalization was assessed via coefficient of variation (CV). The FE study confirmed that larger and thinner IVDs were stiffer while the normalization strongly attenuated the effect of the disc geometry on its stiffness. Yet, notwithstanding the results of the FE study, the experimental stiffness showed consistently higher CV after normalization. Assuming that geometry and material properties affect the mechanical response, they can also compensate for one another. Therefore, the larger CV after normalization can be interpreted as a strong variability of the material properties, previously hidden by the geometry's own influence. In conclusion, a new normalization protocol for the intervertebral disc stiffness in compression, flexion, extension, bilateral torsion and bending was proposed, with the possible use of MRI and FE to acquire the discs' anatomy and determine the nonlinear relations between stiffness and morphology. Such protocol may be useful to relate the disc's mechanical properties to its degree of degeneration.

摘要

椎间盘退变通常与腰痛和椎间刚度变化相关,是一个重大的健康问题。由于椎间盘(IVD)的形态会影响其刚度,在未对刚度相对于形态进行有效归一化的情况下,力学性能与退变程度之间的联系会部分丧失。此外,尽管软组织的行为具有高度非线性,但到目前为止,仅为椎间盘刚度定义了线性归一化方案。因此,本研究的目的是提出一种基于有限元(FE)模拟的非线性归一化方法,并评估其对人类腰椎IVD解剖标本刚度的影响。首先,对20个具有不同尺寸的IVD有限元模型进行了参数研究,包括生物力学测试(压缩、屈伸、双侧扭转和弯曲)模拟,以评估椎间盘几何形状对其顺应性的影响,并建立非线性归一化所需的刚度/形态关系。然后通过高度(H)、横截面积(CSA)、极惯性矩(J)或惯性矩(Ixx、Iyy)对计算得到的刚度进行归一化,以量化线性和非线性归一化的效果。在研究的第二部分,采集了T1加权MRI图像,以确定14个人类腰椎IVD的H、CSA、J、Ixx和Iyy。基于测量的形态以及预先建立的与刚度的关系,然后对每个准静态生物力学测试的标本顺应性应用线性和非线性归一化程序。通过变异系数(CV)评估归一化前后刚度的变异性。有限元研究证实,更大更薄的IVD更硬,而归一化强烈减弱了椎间盘几何形状对其刚度的影响。然而,尽管有限元研究有结果,但实验刚度在归一化后始终显示出更高的CV。假设几何形状和材料特性会影响力学响应,它们也可以相互补偿。因此,归一化后更大的CV可以解释为材料特性的强烈变异性,之前被几何形状自身的影响所掩盖。总之,提出了一种用于压缩、屈伸、双侧扭转和弯曲时椎间盘刚度的新归一化方案,可能利用MRI和有限元来获取椎间盘的解剖结构并确定刚度与形态之间的非线性关系。这种方案可能有助于将椎间盘的力学性能与其退变程度联系起来。

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