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一种用于器官培养实验模拟的新型纤维增强多孔粘弹性牛椎间盘有限元模型。

A Novel Fiber-Reinforced Poroviscoelastic Bovine Intervertebral Disc Finite Element Model for Organ Culture Experiment Simulations.

作者信息

Ristaniemi Aapo, Šećerović Amra, Grad Sibylle, Ferguson Stephen J

机构信息

AO Research Institute Davos, Clavadelerstrasse 8, Davos 7270, Switzerland.

Institute for Biomechanics, ETH Zürich, Hönggerbergring 64, Zürich 8093, Switzerland.

出版信息

J Biomech Eng. 2023 Dec 1;145(12). doi: 10.1115/1.4063557.

Abstract

Intervertebral disc (IVD) degeneration and methods for repair and regeneration have commonly been studied in organ cultures with animal IVDs under compressive loading. With the recent establishment of a novel multi-axial organ culture system, accurate predictions of the global and local mechanical response of the IVD are needed for control system development and to aid in experiment planning. This study aimed to establish a finite element model of bovine IVD capable of predicting IVD behavior at physiological and detrimental load levels. A finite element model was created based on the dimensions and shape of a typical bovine IVD used in the organ culture. The nucleus pulposus (NP) was modeled as a neo-Hookean poroelastic material and the annulus fibrosus (AF) as a fiber-reinforced poroviscoelastic material. The AF consisted of 10 lamella layers and the material properties were distributed in the radial direction. The model outcome was compared to a bovine IVD in a compressive stress-relaxation experiment. A parametric study was conducted to investigate the effect of different material parameters on the overall IVD response. The model was able to capture the equilibrium response and the relaxation response at physiological and higher strain levels. Permeability and elastic stiffness of the AF fiber network affected the overall response most prominently. The established model can be used to evaluate the response of the bovine IVD at strain levels typical for organ culture experiments, to define relevant boundaries for such studies, and to aid in the development and use of new multi-axial organ culture systems.

摘要

椎间盘(IVD)退变以及修复与再生方法通常是在对动物椎间盘进行压缩加载的器官培养中进行研究的。随着新型多轴器官培养系统的建立,为了控制系统的开发以及辅助实验规划,需要准确预测IVD的整体和局部力学响应。本研究旨在建立一个能够预测牛IVD在生理和有害负荷水平下行为的有限元模型。基于器官培养中使用的典型牛IVD的尺寸和形状创建了一个有限元模型。髓核(NP)被建模为新胡克多孔弹性材料,纤维环(AF)被建模为纤维增强多孔粘弹性材料。AF由10个板层组成,材料特性沿径向分布。将模型结果与牛IVD的压缩应力松弛实验结果进行了比较。进行了参数研究以调查不同材料参数对IVD整体响应的影响。该模型能够捕捉生理和更高应变水平下的平衡响应和松弛响应。AF纤维网络的渗透率和弹性刚度对整体响应影响最为显著。所建立的模型可用于评估牛IVD在器官培养实验典型应变水平下的响应,为此类研究定义相关边界,并辅助新型多轴器官培养系统的开发和使用。

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