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椎间盘损伤对相邻节段纤维环机械强度的影响。

The effect of intervertebral disc damage on the mechanical strength of the annulus fibrosus in the adjacent segment.

作者信息

Chow Noah, Gregory Diane E

机构信息

Department of Kinesiology and Physical Education, Wilfrid Laurier University, Waterloo, Ontario, Canada; Department of Health Sciences, Wilfrid Laurier University, Waterloo, Ontario, Canada.

Department of Kinesiology and Physical Education, Wilfrid Laurier University, Waterloo, Ontario, Canada; Department of Health Sciences, Wilfrid Laurier University, Waterloo, Ontario, Canada.

出版信息

Spine J. 2023 Dec;23(12):1935-1940. doi: 10.1016/j.spinee.2023.07.013. Epub 2023 Jul 22.

Abstract

BACKGROUND CONTEXT

A herniated intervertebral disc (IVD) is a common injury in the human population. Despite the injury being isolated to a singular IVD in the spine, it is important to look at the biomechanical effects that a damaged IVD has on the entire spine, specifically the IVD adjacent to the injury.

PURPOSE

This study examined the effects of a damaged IVD on the mechanical properties of the annulus fibrosus (AF) in the adjacent cranial IVD.

STUDY DESIGN

Basic science study using an in-vitro porcine model.

METHODS

Sixteen porcine cervical spines were used; specifically spinal levels C3/4/5 were assigned to one of two experimental groups: 1) a control group that was not subjected any injuries (n=8); 2) an experimental group that experienced an injury to the anterolateral part of the disc, reaching the nucleus pulposus but without affecting the posterior portion of the AF in the C4/5 functional spine unit (FSU) (n=8). Each specimen underwent a previously published precondition compression protocol of 300 N of compression for 15 minutes followed by a cyclical compression protocol of compression protocol of 0.5 Hz sinusoidal waveform at 300 to 1200 N for 2 hours (3600 cycles). Post compression, the C3/4 AF was dissected to obtain two multilayer samples (one anterior and one posterior) as well as a peel sample (from the posterolateral region). A tensile strength test was conducted to examine the strength of the interlamellar matrix (peel sample) and the overall strength of the AF (multilayer samples).

RESULTS

Significant results were found in the peel test samples. Specifically, experimental specimens were less stiff compared than control specimens (p<.01). In addition, experimental specimens also had a lower average strength then control specimens (p<.01). This reduction in both interlamellar strength and stiffness increases the risk of delamination in the experimental samples. In contrast, there were no differences found between the two groups when examining the AF as a whole through the multilayer tests (p>.05).

CONCLUSIONS

It appears that a damaged IVD impacts the biomechanics of the spine and specifically the mechanical properties of the adjacent IVD. Specifically, the observed weakening of the interlamellar matrix in these adjacent IVDs may predispose it to delamination and subsequently degeneration or herniation.

CLINICAL SIGNIFICANCE

These findings may help clinicians when treating patients who have experienced a disc herniation or severe degeneration, as they may potentially experience accelerated adjacent disc degeneration.

摘要

背景

椎间盘突出是人群中的常见损伤。尽管损伤仅局限于脊柱中的单个椎间盘,但研究受损椎间盘对整个脊柱,特别是损伤相邻椎间盘的生物力学影响十分重要。

目的

本研究考察受损椎间盘对相邻上位椎间盘纤维环力学性能的影响。

研究设计

使用体外猪模型的基础科学研究。

方法

使用16个猪颈椎;具体地,将C3/4/5节段分配到两个实验组之一:1)未受任何损伤的对照组(n = 8);2)在C4/5功能脊柱单元中,椎间盘前外侧部分受损,累及髓核但未影响纤维环后部的实验组(n = 8)。每个标本先按照先前发表的预条件压缩方案,以300 N的压力压缩15分钟,然后按照循环压缩方案,以0.5 Hz的正弦波形在300至1200 N的压力下压缩2小时(3600个循环)。压缩后,解剖C3/4纤维环以获得两个多层样本(一个前部样本和一个后部样本)以及一个剥离样本(来自后外侧区域)。进行拉伸强度测试以检查层间基质(剥离样本)的强度和纤维环的整体强度(多层样本)。

结果

在剥离测试样本中发现了显著结果。具体而言,与对照样本相比,实验样本的刚度较低(p <.01)。此外,实验样本的平均强度也低于对照样本(p <.01)。层间强度和刚度的这种降低增加了实验样本分层的风险。相比之下,通过多层测试整体检查纤维环时,两组之间没有发现差异(p>.05)。

结论

似乎受损的椎间盘会影响脊柱的生物力学,特别是相邻椎间盘的力学性能。具体而言,在这些相邻椎间盘中观察到的层间基质减弱可能使其易于分层,进而导致退变或突出。

临床意义

这些发现可能有助于临床医生治疗椎间盘突出或严重退变的患者,因为他们可能会加速相邻椎间盘退变。

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