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使用非线性、各向异性、超弹性模型量化结构对纤维环力学功能的贡献。

Quantifying the contributions of structure to annulus fibrosus mechanical function using a nonlinear, anisotropic, hyperelastic model.

作者信息

Guerin Heather Lynch, Elliott Dawn M

机构信息

McKay Orthopaedic Research Laboratory, Department of Orthopaedic Surgery, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.

出版信息

J Orthop Res. 2007 Apr;25(4):508-16. doi: 10.1002/jor.20324.

Abstract

The annulus fibrosus of the intervertebral disc is comprised of concentric lamella of oriented collagen fibers embedded in a hydrated proteoglycan matrix with smaller amounts of minor collagens, elastin, and small proteoglycans. Its structure and composition enable the disc to withstand complex loads and result in inhomogeneous, anisotropic, and nonlinear mechanical behaviors. The specific contributions of the annulus fibrosus constituent structures to mechanical function remain unclear. Therefore, the objective of this study was to use a structurally motivated, anisotropic, nonlinear strain energy model of annulus fibrosus to determine the relative contributions of its structural components to tissue mechanical behavior. A nonlinear, orthotropic hyperelastic model was developed for the annulus fibrosus. Terms to describe fibers, matrix, and interactions between annulus fibrosus structures (shear and normal to the fiber directions) were explicitly included. The contributions of these structures were analyzed by including or removing terms and determining the effect on the fit to multidimensional experimental data. Correlation between experimental and model-predicted stress, a Bland-Altman analysis of bias and standard deviation of residuals, and the contribution of structural terms to overall tissue stress were calculated. Both shear and normal interaction terms were necessary to accurately model multidimensional behavior. Inclusion of shear interactions more accurately described annulus fibrosus nonlinearity. Fiber stretch and shear interactions dominated contributions to circumferential direction stress, while normal and shear interactions dominated axial stress. The results suggest that interactions between fibers and matrix, perhaps facilitated by crosslinks, elastin, or minor collagens, augment traditional (i.e., fiber-uncrimping) models of nonlinearity.

摘要

椎间盘的纤维环由同心排列的胶原纤维薄片组成,这些纤维嵌入水合蛋白聚糖基质中,还含有少量的次要胶原、弹性蛋白和小蛋白聚糖。其结构和组成使椎间盘能够承受复杂载荷,并导致不均匀、各向异性和非线性的力学行为。纤维环组成结构对力学功能的具体贡献仍不清楚。因此,本研究的目的是使用一种基于结构的、各向异性的、非线性应变能模型来确定纤维环结构成分对组织力学行为的相对贡献。为纤维环建立了一个非线性、正交各向异性的超弹性模型。明确纳入了描述纤维、基质以及纤维环结构之间相互作用(纤维方向的剪切和法线方向)的项。通过纳入或去除这些项并确定其对多维实验数据拟合的影响,来分析这些结构的贡献。计算了实验应力与模型预测应力之间的相关性、残差偏差和标准差的布兰德 - 奥特曼分析以及结构项对整体组织应力的贡献。剪切和法线相互作用项对于准确模拟多维行为都是必要的。纳入剪切相互作用能更准确地描述纤维环的非线性。纤维拉伸和剪切相互作用对圆周方向应力的贡献占主导,而法线和剪切相互作用对轴向应力的贡献占主导。结果表明,纤维与基质之间的相互作用,可能是由交联、弹性蛋白或次要胶原促进的,增强了传统的(即纤维解卷曲)非线性模型。

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