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软骨损伤的多尺度计算建模。

Multiscale In Silico Modeling of Cartilage Injuries.

机构信息

Department of Technical Physics, University of Eastern Finland, Kuopio, Finland.

Department of Biomedical Engineering, Lund University, Lund, Sweden.

出版信息

Adv Exp Med Biol. 2023;1402:45-56. doi: 10.1007/978-3-031-25588-5_3.

Abstract

Injurious loading of the joint can be accompanied by articular cartilage damage and trigger inflammation. However, it is not well-known which mechanism controls further cartilage degradation, ultimately leading to post-traumatic osteoarthritis. For personalized prognostics, there should also be a method that can predict tissue alterations following joint and cartilage injury. This chapter gives an overview of experimental and computational methods to characterize and predict cartilage degradation following joint injury. Two mechanisms for cartilage degradation are proposed. In (1) biomechanically driven cartilage degradation, it is assumed that excessive levels of strain or stress of the fibrillar or non-fibrillar matrix lead to proteoglycan loss or collagen damage and degradation. In (2) biochemically driven cartilage degradation, it is assumed that diffusion of inflammatory cytokines leads to degradation of the extracellular matrix. When implementing these two mechanisms in a computational in silico modeling workflow, supplemented by in vitro and in vivo experiments, it is shown that biomechanically driven cartilage degradation is concentrated on the damage environment, while inflammation via synovial fluid affects all free cartilage surfaces. It is also proposed how the presented in silico modeling methodology may be used in the future for personalized prognostics and treatment planning of patients with a joint injury.

摘要

关节的损伤性负荷可伴有软骨损伤并引发炎症。然而,目前尚不清楚哪种机制控制着进一步的软骨降解,最终导致创伤后骨关节炎。为了进行个性化预测,还应该有一种方法可以预测关节和软骨损伤后的组织变化。本章概述了用于描述和预测关节损伤后软骨降解的实验和计算方法。提出了两种软骨降解机制。在(1)力学驱动的软骨降解中,假设纤维或非纤维基质的应变或应力水平过高会导致蛋白聚糖丢失或胶原损伤和降解。在(2)生化驱动的软骨降解中,假设炎症细胞因子的扩散会导致细胞外基质降解。当在计算计算机模拟工作流程中实施这两种机制,并辅以体外和体内实验时,表明力学驱动的软骨降解集中在损伤环境中,而通过滑液的炎症则会影响所有游离软骨表面。还提出了如何在未来将提出的计算机模拟方法用于预测和治疗关节损伤患者的个性化治疗计划。

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