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一种解释生理润滑的机制。

A mechanism to explain physiological lubrication.

作者信息

James David F, Fick Garret M, Baines W Douglas

机构信息

Department of Mechanical and Industrial Engineering, University of Toronto, Toronto M5S 3G8, Canada.

出版信息

J Biomech Eng. 2010 Jul;132(7):071002. doi: 10.1115/1.4001422.

Abstract

A new mechanism of physiological lubrication is proposed to explain how low-viscosity synovial fluid prevents articular surfaces from contacting and wearing. The new mechanism is based on the hypothesis that the hyaluronic acid chains in synovial fluid bind to the cartilage surfaces through electrostatic charges, with the phospholipid layer on an articular surface supplying the necessary attractive charges. The stationary hyaluronic acid network causes a large hydrodynamic resistance to outward flow from the gap. To determine the effectiveness of the network in preventing contact, squeeze-film flow between two incompressible, permeable disks is analyzed when a constant load is suddenly applied, and the solvent--synovial fluid minus the hyaluronic acid--escapes through the network and through the permeable disks. The analysis yields the approximate time for the gap distance to decrease to asperity size. For realistic physiological parameters, the time for the surfaces to contact is a minimum of several minutes and likely much longer. The role of albumin in the synovial fluid is included because the large protein molecules are trapped by the small openings in the hyaluronic acid network, which increases the flow resistance of the network and thereby delays contact of the surfaces.

摘要

提出了一种新的生理润滑机制,以解释低粘度滑液如何防止关节表面接触和磨损。这种新机制基于这样一种假设:滑液中的透明质酸链通过静电荷与软骨表面结合,关节表面的磷脂层提供必要的吸引电荷。静止的透明质酸网络对从间隙向外流动产生很大的流体动力阻力。为了确定该网络在防止接触方面的有效性,分析了在突然施加恒定载荷时两个不可压缩、可渗透圆盘之间的挤压膜流动,溶剂(即滑液减去透明质酸)通过网络和可渗透圆盘逸出。该分析得出间隙距离减小到粗糙尺寸的近似时间。对于实际的生理参数,表面接触的时间至少为几分钟,可能更长。滑液中白蛋白的作用也被考虑在内,因为大蛋白质分子被透明质酸网络中的小孔捕获,这增加了网络的流动阻力,从而延迟了表面的接触。

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