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牛关节软骨外植体在无侧限循环压缩过程中的非均匀三维应变场。

Heterogeneous three-dimensional strain fields during unconfined cyclic compression in bovine articular cartilage explants.

作者信息

Neu C P, Hull M L, Walton J H

机构信息

Biomedical Engineering Graduate Group, University of California at Davis, One Shields Avenue, Davis, CA 95616, USA.

出版信息

J Orthop Res. 2005 Nov;23(6):1390-8. doi: 10.1016/j.orthres.2005.03.022.1100230622. Epub 2005 Jun 21.

Abstract

Articular cartilage provides critical load-bearing and tribological properties to the normal function of diarthrodial joints. The unique properties of cartilage, as well as heterogeneous deformations during mechanical compression, are due to the nonuniform microstructural organization of tissue components such as collagens and proteoglycans. A new cartilage deformation by tag registration (CDTR) technique has been developed by the authors to determine heterogeneous deformations in articular cartilage explants. The technique uses a combination of specialized MRI methods, a custom cyclic loading apparatus, and image processing software. The objective of this study was to use the CDTR technique to document strain patterns throughout the volume of normal bovine articular cartilage explants during cyclic unconfined compression at two physiologically-relevant applied normal stress levels (1.29 and 2.57 MPa). Despite simple uniaxial cyclic compressive loading with a flat, nonporous indenter, strain patterns were heterogeneous. Strains in the thickness direction (E(yy)) were compressive, varied nonlinearly with depth from the articular surface from a maximum magnitude of 11% at the articular surface, and were comparable despite a 2-fold increase in applied normal stress. Strains perpendicular to the thickness direction (E(xx) and E(zz)) were tensile, decreased linearly with depth from the articular surface from a maximum of 7%, and increased in magnitude 2.5-fold with a 2-fold increase in applied normal stress. Shear strains in the transverse plane (E(xz)) were approximately zero while shear strains in the other two planes were much larger and increased in magnitude with depth from the articular surface, reaching maximum magnitudes of 2% at the articular cartilage-subchondral bone interface. In general, strain patterns indicated that cartilage osteochondral explants exhibited depth-dependent nonisotropic behavior during uniaxial cyclic loading. These results are useful in verifying constitutive formulations of articular cartilage during cyclic unconfined compression and in characterizing the micromechanical environment likely experienced by individual chondrocytes throughout the tissue volume.

摘要

关节软骨为滑膜关节的正常功能提供关键的承重和摩擦学特性。软骨的独特性质以及机械压缩过程中的非均匀变形,是由于胶原蛋白和蛋白聚糖等组织成分的微观结构组织不均匀所致。作者开发了一种新的软骨变形标记配准(CDTR)技术,以确定关节软骨外植体中的非均匀变形。该技术结合了专门的MRI方法、定制的循环加载装置和图像处理软件。本研究的目的是使用CDTR技术记录正常牛关节软骨外植体在两个生理相关的施加法向应力水平(1.29和2.57MPa)下循环无侧限压缩过程中整个体积内的应变模式。尽管使用平坦、无孔的压头进行简单的单轴循环压缩加载,但应变模式是不均匀的。厚度方向(E(yy))的应变是压缩性的,从关节表面起随深度呈非线性变化,在关节表面处最大幅度为11%,尽管施加的法向应力增加了两倍,但应变仍相当。垂直于厚度方向(E(xx)和E(zz))的应变是拉伸性的,从关节表面起随深度线性减小,最大值为7%,并且随着施加的法向应力增加两倍,其幅度增加2.5倍。横向平面(E(xz))的剪切应变近似为零,而其他两个平面的剪切应变则大得多,并从关节表面起随深度增加幅度,在关节软骨 - 软骨下骨界面处达到最大幅度2%。总体而言,应变模式表明软骨 - 骨软骨外植体在单轴循环加载过程中表现出深度依赖性的各向异性行为。这些结果有助于验证关节软骨在循环无侧限压缩过程中的本构公式,并表征整个组织体积中单个软骨细胞可能经历的微观力学环境。

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