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软组织的有限元建模:材料模型、组织相互作用及挑战

Finite element modeling of soft tissues: material models, tissue interaction and challenges.

作者信息

Freutel Maren, Schmidt Hendrik, Dürselen Lutz, Ignatius Anita, Galbusera Fabio

机构信息

Institute of Orthopaedic Research and Biomechanics, Center of Musculoskeletal Research Ulm, University of Ulm, Ulm, Germany.

Julius Wolff Institut, Charité - Universitätsmedizin Berlin, Berlin, Germany.

出版信息

Clin Biomech (Bristol). 2014 Apr;29(4):363-72. doi: 10.1016/j.clinbiomech.2014.01.006. Epub 2014 Jan 23.

Abstract

BACKGROUND

Musculoskeletal soft tissues, such as articular cartilage, ligaments, knee meniscus and intervertebral disk, have a complex structure, which provides elasticity and capability to support and distribute the body loads. Soft tissues describe an inhomogeneous and multiphasic structure, and exhibit a nonlinear, time-dependent behavior. Their mechanical response is governed by a substance composed of protein fiber-rich and proteoglycan-rich extracellular matrix and interstitial fluid. Protein fibers (e.g. collagen) give the tissue direction dependent stiffness and strength. To investigate these complex biological systems, the use of mathematical tools is well established, alone or in combination with experimental in vitro and in vivo tests. However, the development of these models poses many challenges due to the complex structure and mechanical response of soft tissues.

METHODS

Non-systematic literature review.

FINDINGS

This paper provides a summary of different modeling strategies with associated material properties, contact interactions between articulating tissues, validation and sensitivity of soft tissues with special focus on knee joint soft tissues and intervertebral disk. Furthermore, it reviews and discusses some salient clinical findings of reported finite element simulations.

INTERPRETATION

Model studies extensively contributed to the understanding of functional biomechanics of soft tissues. Models can be effectively used to elucidate clinically relevant questions. However, users should be aware of the complexity of such tissues and of the capabilities and limitations of these approaches to adequately simulate a specific in vivo or in vitro phenomenon.

摘要

背景

肌肉骨骼软组织,如关节软骨、韧带、膝关节半月板和椎间盘,具有复杂的结构,可提供弹性以及支撑和分散身体负荷的能力。软组织具有不均匀的多相结构,并表现出非线性的、随时间变化的行为。它们的力学响应由一种由富含蛋白质纤维和富含蛋白聚糖的细胞外基质以及组织液组成的物质所控制。蛋白质纤维(如胶原蛋白)赋予组织与方向相关的刚度和强度。为了研究这些复杂的生物系统,单独或与体外和体内实验测试相结合使用数学工具已得到充分确立。然而,由于软组织的复杂结构和力学响应,这些模型的开发面临许多挑战。

方法

非系统性文献综述。

结果

本文总结了不同的建模策略及其相关的材料特性、关节组织之间的接触相互作用、软组织的验证和敏感性,特别关注膝关节软组织和椎间盘。此外,它回顾并讨论了所报道的有限元模拟的一些显著临床发现。

解读

模型研究对理解软组织的功能生物力学有很大贡献。模型可有效地用于阐明临床相关问题。然而,使用者应意识到此类组织的复杂性以及这些方法在充分模拟特定体内或体外现象方面的能力和局限性。

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