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预应变如何影响椎间盘的化学扭转响应。

How pre-strain affects the chemo-torsional response of the intervertebral disc.

机构信息

Lille University, Civil Engineering and geo-Environmental Laboratory (ULR 4515 LGCgE), 59000 Lille, France.

Sfax University, ENIS, Materials Engineering and Environment Laboratory (LGME), 3038 Sfax, Tunisia.

出版信息

Clin Biomech (Bristol). 2020 Jun;76:105020. doi: 10.1016/j.clinbiomech.2020.105020. Epub 2020 Apr 28.

Abstract

BACKGROUND

The role of the axial pre-strain on the torsional response of the intervertebral disc remains largely undefined. Moreover, the chemo-mechanical interactions in disc tissues are still unclear and corresponding data are rare in the literature. The paper deals with an in-vitro study of the pre-strain effect on the chemical sensitivity of the disc torsional response.

METHODS

Fifteen non-frozen 'motion segments' (two vertebrae and the intervening soft tissues) were extracted from the cervical spines of mature sheep. The motion segments were loaded in torsion at various saline concentrations and axial pre-strain levels in order to modulate the intradiscal pressure. After preconditioning with successive low-strain compressions at a magnitude of 0.1 mm (10 cycles at 0.05 mm/s), the motion segment was subjected to a cyclic torsion until a twisting level of 2 deg. at 0.05 deg./s while a constant axial pre-strain (in compression or in tension) is maintained, the saline concentration of the surrounding fluid bath being changed from hypo-osmotic condition to hyper-osmotic condition.

FINDINGS

Analysis of variance shows that the saline concentration influences the torsional response only when the motion segments are pre-compressed (p < .001) with significant differences between hypo-osmotic condition and hyper-osmotic condition.

INTERPRETATION

The combination of a compressive pre-strain with twisting amplifies the nucleus hydrostatic pressure on the annulus and the annulus collagen fibers tensions. The proteoglycans density increases with the compressive pre-strain and leads to higher chemical imbalances, which would explain the increase in chemical sensitivity of the disc torsional response.

摘要

背景

轴向预应变对椎间盘扭转响应的作用在很大程度上尚未确定。此外,椎间盘组织中的化学-力学相互作用仍不清楚,文献中相应数据也很少。本文研究了预应变对椎间盘扭转响应的化学敏感性的影响。

方法

从成熟绵羊的颈椎中提取了 15 个非冷冻的“运动节段”(两个椎体和中间的软组织)。在不同盐浓度和轴向预应变水平下对运动节段进行扭转加载,以调节椎间盘内压力。在以 0.1mm 的幅度(0.05mm/s 时 10 个循环)进行连续低应变压缩的预适应后,运动节段在 0.05deg/s 的恒定轴向预应变(压缩或拉伸)下受到循环扭转,直至达到 2deg 的扭转水平,周围流体浴的盐浓度从低渗条件变为高渗条件。

发现

方差分析表明,只有当运动节段在预压缩时(p<0.001),盐浓度才会影响扭转响应,在低渗条件和高渗条件之间存在显著差异。

解释

压缩预应变与扭转的结合会放大核内静水压力和环纤维张力。蛋白聚糖密度随压缩预应变而增加,导致更高的化学失衡,这可以解释椎间盘扭转响应的化学敏感性增加。

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