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轴向椎间盘生物力学是由渗透作用决定的吗?

Are axial intervertebral disc biomechanics determined by osmosis?

作者信息

Vergroesen Pieter-Paul A, Emanuel Kaj S, Peeters Mirte, Kingma Idsart, Smit Theodoor H

机构信息

Department of Orthopedic Surgery, VU University Medical Center, Amsterdam, The Netherlands; Department of Orthopedic Surgery, Noord-West Ziekenhuizen, Alkmaar, The Netherlands; MOVE Research Institute Amsterdam, Amsterdam, The Netherlands; Amsterdam Movement Sciences Institute, Amsterdam, The Netherlands.

Department of Orthopedic Surgery, VU University Medical Center, Amsterdam, The Netherlands; MOVE Research Institute Amsterdam, Amsterdam, The Netherlands; Amsterdam Movement Sciences Institute, Amsterdam, The Netherlands.

出版信息

J Biomech. 2018 Mar 21;70:4-9. doi: 10.1016/j.jbiomech.2017.04.027. Epub 2017 May 8.

Abstract

The intervertebral disc faces high compressive forces during daily activities. Axial compression induces creeping fluid loss and reduction in disc height. With degeneration, disc fluids and height are progressively lost, altering biomechanics. It is assumed that this reduction of fluids is caused by a decline of osmolality within the disc due to proteoglycan depletion. Here we investigate the isolated effect of a reduction in osmosis on the biomechanical properties of the intervertebral disc. Continuous diurnal loading was applied to healthy caprine intervertebral discs in a loaded disc culture system for a total of 6days. We increased testing bath osmolality with two doses of polyethylene-glycol (PEG), thereby reducing the osmotic gradient between the disc and the surrounding fluid. This way we could study the isolated effect of reduced osmosis on axial creep, without damaging the disc. We evaluated: daily creep and recovery, recovery time-constants and compressive stiffness. Additionally, we investigated water content. There was a strong dose-dependent effect of PEG concentration on water content and axial creep behaviour: disc height, amplitude and rate of creep and recovery were all significantly reduced. Axial compressive stiffness of the disc was not affected. Reduction of water content and amplitude of creep and recovery showed similarity to degenerative disc biomechanics. However, the time-constants increased, indicating that the hydraulic permeability was reduced, in contrast to what happens with degeneration. This suggests that besides the osmotic gradient, the permeability of the tissues determines healthy intervertebral disc biomechanics.

摘要

在日常活动中,椎间盘面临着很高的压缩力。轴向压缩会导致椎间盘内的液体逐渐流失,椎间盘高度降低。随着椎间盘退变,椎间盘内的液体和高度会逐渐减少,从而改变生物力学特性。据推测,这种液体减少是由于蛋白聚糖耗竭导致椎间盘内渗透压下降所致。在此,我们研究了渗透压降低对椎间盘生物力学特性的单独影响。在加载椎间盘培养系统中,对健康的山羊椎间盘施加连续的昼夜负荷,总共持续6天。我们使用两剂聚乙二醇(PEG)提高测试浴的渗透压,从而降低椎间盘与周围液体之间的渗透梯度。通过这种方式,我们可以研究渗透压降低对轴向蠕变的单独影响,而不会损伤椎间盘。我们评估了:每日蠕变和恢复情况、恢复时间常数以及压缩刚度。此外,我们还研究了含水量。PEG浓度对含水量和轴向蠕变行为有很强的剂量依赖性影响:椎间盘高度、蠕变和恢复的幅度及速率均显著降低。椎间盘的轴向压缩刚度不受影响。含水量以及蠕变和恢复幅度的降低与退变椎间盘的生物力学特性相似。然而,时间常数增加,表明与退变情况相反,液压渗透率降低。这表明除了渗透梯度外,组织的渗透率也决定了健康椎间盘的生物力学特性。

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