Federico Salvatore, Herzog Walter
Human Performance Laboratory, Faculty of Kinesiology, The University of Calgary, 2500 University Drive NW, Calgary, AB, Canada, T2N 1N4.
Biomech Model Mechanobiol. 2008 Oct;7(5):367-78. doi: 10.1007/s10237-007-0091-0. Epub 2007 Jul 6.
Articular cartilage is known to be anisotropic and inhomogeneous because of its microstructure. In particular, its elastic properties are influenced by the arrangement of the collagen fibres, which are orthogonal to the bone-cartilage interface in the deep zone, randomly oriented in the middle zone, and parallel to the surface in the superficial zone. In past studies, cartilage permeability has been related directly to the orientation of the glycosaminoglycan chains attached to the proteoglycans which constitute the tissue matrix. These studies predicted permeability to be isotropic in the undeformed configuration, and anisotropic under compression. They neglected tissue anisotropy caused by the collagen network. However, magnetic resonance studies suggest that fluid flow is "directed" by collagen fibres in biological tissues. Therefore, the aim of this study was to express the permeability of cartilage accounting for the microstructural anisotropy and inhomogeneity caused by the collagen fibres. Permeability is predicted to be anisotropic and inhomogeneous, independent of the state of strain, which is consistent with the morphology of the tissue. Looking at the local anisotropy of permeability, we may infer that the arrangement of the collagen fibre network plays an important role in directing fluid flow to optimise tissue functioning.
由于其微观结构,关节软骨具有各向异性和不均匀性。特别是,其弹性特性受胶原纤维排列的影响,在深层区域胶原纤维与骨 - 软骨界面正交,在中间区域随机取向,在表层区域与表面平行。在过去的研究中,软骨渗透性直接与附着在构成组织基质的蛋白聚糖上的糖胺聚糖链的取向有关。这些研究预测,在未变形状态下渗透性是各向同性的,而在压缩状态下是各向异性的。它们忽略了由胶原网络引起的组织各向异性。然而,磁共振研究表明,生物组织中的流体流动是由胶原纤维“引导”的。因此,本研究的目的是考虑由胶原纤维引起的微观结构各向异性和不均匀性来表示软骨的渗透性。预计渗透性是各向异性和不均匀的,与应变状态无关,这与组织的形态一致。从渗透性的局部各向异性来看,我们可以推断胶原纤维网络的排列在引导流体流动以优化组织功能方面起着重要作用。