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牛膝关节半月板在环向张力下的体积损失与恢复。

Volume Loss and Recovery in Bovine Knee Meniscus Loaded in Circumferential Tension.

机构信息

Department of Biomedical Engineering, University of Delaware, 540 S College Ave Rm 125, Newark, DE 19716.

Department of Mechanical Engineering, University of Delaware, Newark, DE 19716.

出版信息

J Biomech Eng. 2023 Jul 1;145(7). doi: 10.1115/1.4062142.

Abstract

Load-induced volume change is an important aspect of knee meniscus function because volume loss creates fluid pressure, which minimizes friction and helps support compressive loads. The knee meniscus is unusual amongst cartilaginous tissues in that it is loaded not only in axial compression, but also in circumferential tension between its tibial attachments. Despite the physiologic importance of the knee meniscus' tensile properties, its volumetric strain in tension has never been directly measured, and predictions of volume strain in the scientific literature are inconsistent. In this study, we apply uniaxial tension to bovine knee meniscus and use biplanar imaging to directly observe the resulting three-dimensional volume change and unloaded recovery, revealing that tension causes volumetric contraction. Compression is already known to also cause contraction; therefore, all major physiologic loads compress and pressurize the meniscus, inducing fluid outflow. Although passive unloaded recovery is often described as slow relative to loaded loss, here we show that at physiologic strains the volume recovery rate in the meniscus upon unloading is faster than the rate of volume loss. These measurements of volumetric strain are an important step toward a complete theory of knee meniscus fluid flow and load support.

摘要

负载引起的体积变化是膝关节半月板功能的一个重要方面,因为体积损失会产生流体压力,从而最小化摩擦并有助于支撑压缩载荷。膝关节半月板在软骨组织中是不寻常的,因为它不仅承受轴向压缩,还承受胫骨附着处之间的周向张力。尽管膝关节半月板的拉伸性能具有生理重要性,但它在拉伸时的体积应变从未被直接测量过,而且科学文献中的体积应变预测也不一致。在这项研究中,我们对牛膝关节半月板施加单向张力,并使用双平面成像直接观察到由此产生的三维体积变化和卸载恢复,揭示了张力会导致体积收缩。已经知道压缩也会导致收缩;因此,所有主要的生理负荷都会压缩并加压半月板,导致流体流出。尽管被动卸载恢复通常被描述为相对于加载损失较慢,但在这里我们表明,在生理应变下,半月板在卸载时的体积恢复速率比体积损失速率快。这些体积应变的测量是膝关节半月板流体流动和负载支撑完整理论的重要一步。

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