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一个生物化学/生物物理学的 3D 有限元椎间盘模型。

A biochemical/biophysical 3D FE intervertebral disc model.

机构信息

Department of Biomedical Engineering, Eindhoven University of Technology, The Netherlands.

出版信息

Biomech Model Mechanobiol. 2010 Oct;9(5):641-50. doi: 10.1007/s10237-010-0203-0. Epub 2010 Mar 13.

Abstract

Present research focuses on different strategies to preserve the degenerated disc. To assure long-term success of novel approaches, favorable mechanical conditions in the disc tissue are essential. To evaluate these, a model is required that can determine internal mechanical conditions which cannot be directly measured as a function of assessable biophysical characteristics. Therefore, the objective is to evaluate if constitutive and material laws acquired on isolated samples of nucleus and annulus tissue can be used directly in a whole-organ 3D FE model to describe intervertebral disc behavior. The 3D osmo-poro-visco-hyper-elastic disc (OVED) model describes disc behavior as a function of annulus and nucleus tissue biochemical composition, organization and specific constituent properties. The description of the 3D collagen network was enhanced to account for smaller fibril structures. Tissue mechanical behavior tests on isolated nucleus and annulus samples were simulated with models incorporating tissue composition to calculate the constituent parameter values. The obtained constitutive laws were incorporated into the whole-organ model. The overall behavior and disc properties of the model were corroborated against in vitro creep experiments of human L4/L5 discs. The OVED model simulated isolated tissue experiments on confined compression and uniaxial tensile test and whole-organ disc behavior. This was possible, provided that secondary fiber structures were accounted for. The fair agreement (radial bulge, axial creep deformation and intradiscal pressure) between model and experiment was obtained using constitutive properties that are the same for annulus and nucleus. Both tissue models differed in the 3D OVED model only by composition. The composition-based modeling presents the advantage of reducing the numbers of material parameters to a minimum and to use tissue composition directly as input. Hence, this approach provides the possibility to describe internal mechanical conditions of the disc as a function of assessable biophysical characteristics.

摘要

目前的研究重点是不同的策略来保存退化的椎间盘。为了确保新方法的长期成功,椎间盘组织需要有利的力学条件。为了评估这些条件,需要一种模型来确定不能直接测量的内部力学条件,而这些条件是作为可评估的生物物理特征的函数。因此,目标是评估从核和环组织的分离样本中获得的本构和材料定律是否可以直接用于整个器官的 3D FE 模型来描述椎间盘的行为。3D 渗透压-多孔-粘弹性椎间盘(OVED)模型描述了椎间盘的行为,其功能是环和核组织生化组成、组织和特定组成性质。3D 胶原网络的描述得到了增强,以考虑到较小的原纤维结构。通过纳入组织组成的模型来模拟分离的核和环样本的组织力学行为测试,以计算组成参数值。获得的本构定律被纳入整体器官模型。该模型的整体行为和椎间盘特性与体外 L4/L5 椎间盘蠕变实验进行了验证。OVED 模型模拟了隔离组织实验的约束压缩和单轴拉伸试验以及整个器官的椎间盘行为。只要考虑到次级纤维结构,这就是可能的。使用相同的环和核本构特性,模型和实验之间在径向隆起、轴向蠕变变形和椎间盘内压力方面得到了很好的一致性。两种组织模型在 3D OVED 模型中仅通过组成不同。基于组成的建模具有将材料参数数量减少到最低并直接将组织组成用作输入的优势。因此,这种方法提供了描述椎间盘内部力学条件的可能性,作为可评估的生物物理特征的函数。

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