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关节软骨的多尺度力学:耦合肌肉骨骼、关节和微尺度计算模型的潜力和挑战。

Multiscale mechanics of articular cartilage: potentials and challenges of coupling musculoskeletal, joint, and microscale computational models.

机构信息

Department of Biomedical Engineering, Lerner Research Institute, Cleveland Clinic, Cleveland, OH, USA.

出版信息

Ann Biomed Eng. 2012 Nov;40(11):2456-74. doi: 10.1007/s10439-012-0598-0. Epub 2012 May 31.

Abstract

Articular cartilage experiences significant mechanical loads during daily activities. Healthy cartilage provides the capacity for load bearing and regulates the mechanobiological processes for tissue development, maintenance, and repair. Experimental studies at multiple scales have provided a fundamental understanding of macroscopic mechanical function, evaluation of the micromechanical environment of chondrocytes, and the foundations for mechanobiological response. In addition, computational models of cartilage have offered a concise description of experimental data at many spatial levels under healthy and diseased conditions, and have served to generate hypotheses for the mechanical and biological function. Further, modeling and simulation provides a platform for predictive risk assessment, management of dysfunction, as well as a means to relate multiple spatial scales. Simulation-based investigation of cartilage comes with many challenges including both the computational burden and often insufficient availability of data for model development and validation. This review outlines recent modeling and simulation approaches to understand cartilage function from a mechanical systems perspective, and illustrates pathways to associate mechanics with biological function. Computational representations at single scales are provided from the body down to the microstructure, along with attempts to explore multiscale mechanisms of load sharing that dictate the mechanical environment of the cartilage and chondrocytes.

摘要

关节软骨在日常活动中承受着巨大的机械负荷。健康的软骨具有承载负荷的能力,并调节组织发育、维持和修复的力学生物学过程。在多个尺度上的实验研究提供了对宏观力学功能的基本理解,评估了软骨细胞的微机械环境,并为力学生物学反应奠定了基础。此外,软骨的计算模型在健康和患病条件下,在许多空间水平上简洁地描述了实验数据,并为机械和生物学功能生成了假设。进一步说,建模和模拟为预测风险评估、功能障碍管理以及关联多个空间尺度提供了一个平台。基于模拟的软骨研究面临着许多挑战,包括计算负担以及模型开发和验证的数据往往不足。这篇综述概述了最近的建模和模拟方法,从力学系统的角度理解软骨功能,并说明了将力学与生物学功能联系起来的途径。从身体到微观结构,提供了单尺度的计算表示,并尝试探索了决定软骨和软骨细胞力学环境的多尺度负荷分配机制。

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