Department of Clinical Neurophysiology, Kuopio University Hospital, FI-70211 Kuopio, Finland.
Comput Math Methods Med. 2013;2013:326150. doi: 10.1155/2013/326150. Epub 2013 Apr 8.
The function of articular cartilage depends on its structure and composition, sensitively impaired in disease (e.g. osteoarthritis, OA). Responses of chondrocytes to tissue loading are modulated by the structure. Altered cell responses as an effect of OA may regulate cartilage mechanotransduction and cell biosynthesis. To be able to evaluate cell responses and factors affecting the onset and progression of OA, local tissue and cell stresses and strains in cartilage need to be characterized. This is extremely challenging with the presently available experimental techniques and therefore computational modeling is required. Modern models of articular cartilage are inhomogeneous and anisotropic, and they include many aspects of the real tissue structure and composition. In this paper, we provide an overview of the computational applications that have been developed for modeling the mechanics of articular cartilage at the tissue and cellular level. We concentrate on the use of fibril-reinforced models of cartilage. Furthermore, we introduce practical considerations for modeling applications, including also experimental tests that can be combined with the modeling approach. At the end, we discuss the prospects for patient-specific models when aiming to use finite element modeling analysis and evaluation of articular cartilage function, cellular responses, failure points, OA progression, and rehabilitation.
关节软骨的功能取决于其结构和组成,在疾病(如骨关节炎,OA)中会受到敏感的损害。软骨细胞对组织加载的反应受结构调节。OA 影响的细胞反应可能会调节软骨的机械转导和细胞生物合成。为了能够评估细胞反应以及影响 OA 发生和进展的因素,需要对软骨中的局部组织和细胞应力和应变进行特征描述。目前可用的实验技术极具挑战性,因此需要计算建模。现代关节软骨模型具有各向异性和各向异性,并且它们包含许多真实组织结构和组成的方面。在本文中,我们提供了用于在组织和细胞水平上对关节软骨力学进行建模的计算应用程序的概述。我们专注于使用纤维增强的软骨模型。此外,我们还介绍了建模应用的实用注意事项,包括可与建模方法结合使用的实验测试。最后,当我们旨在使用有限元建模分析和评估关节软骨功能、细胞反应、失效点、OA 进展和康复时,我们讨论了针对特定患者的模型的前景。