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椎间盘弹性成像:关联压缩和弯曲状态下的剪切模量与弛豫测量法

Intervertebral Disc Elastography to Relate Shear Modulus and Relaxometry in Compression and Bending.

作者信息

Davis Zachary R, Gossett Paull C, Wilson Robert L, Kim Woong, Mei Yue, Butz Kent D, Emery Nancy C, Nauman Eric A, Avril Stéphane, Neu Corey P, Chan Deva D

机构信息

Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USA.

Paul M. Rady Department of Mechanical Engineering, University of Colorado, Boulder, CO, USA.

出版信息

bioRxiv. 2023 Sep 5:2023.09.01.555817. doi: 10.1101/2023.09.01.555817.

Abstract

Intervertebral disc degeneration is the most recognized cause of low back pain, characterized by the decline of tissue structure and mechanics. Image-based mechanical parameters (e.g., strain, stiffness) may provide an ideal assessment of disc function that is lost with degeneration but unfortunately remains underdeveloped. Moreover, it is unknown whether strain or stiffness of the disc may be predicted by MRI relaxometry (e.g. or ), an increasingly accepted quantitative measure of disc structure. In this study, we quantified and relaxation times and in-plane strains using displacement-encoded MRI within the disc under physiological levels of compression and bending. We then estimated shear modulus in orthogonal image planes and compared these values to relaxation times and strains within regions of the disc. Intratissue strain depended on the loading mode, and shear modulus in the nucleus pulposus was typically an order of magnitude lower than the annulus fibrosis, except in bending, where the apparent stiffness depended on the loading. Relative shear moduli estimated from strain data derived under compression generally did not correspond with those from bending experiments, with no correlations in the sagittal plane and only 4 of 15 regions correlated in the coronal plane, suggesting that future inverse models should incorporate multiple loading conditions. Strain imaging and strain-based estimation of material properties may serve as imaging biomarkers to distinguish healthy and diseased discs. Additionally, image-based elastography and relaxometry may be viewed as complementary measures of disc structure and function to assess degeneration in longitudinal studies.

摘要

椎间盘退变是导致腰痛最常见的原因,其特征是组织结构和力学性能下降。基于图像的力学参数(如应变、刚度)可能为椎间盘功能提供理想的评估,而这种功能会随着退变而丧失,但遗憾的是目前仍未得到充分发展。此外,尚不清楚椎间盘的应变或刚度是否可通过MRI弛豫测量法(如或)来预测,MRI弛豫测量法是一种越来越被认可的椎间盘结构定量测量方法。在本研究中,我们使用位移编码MRI在生理水平的压缩和弯曲条件下对椎间盘内的和弛豫时间以及平面内应变进行了量化。然后,我们在正交图像平面中估计了剪切模量,并将这些值与椎间盘区域内的弛豫时间和应变进行了比较。组织内应变取决于加载模式,除了在弯曲时表观刚度取决于加载情况外,髓核中的剪切模量通常比纤维环低一个数量级。从压缩条件下获得的应变数据估计的相对剪切模量通常与弯曲实验中的不对应,矢状面无相关性,冠状面15个区域中只有4个区域相关,这表明未来的逆向模型应纳入多种加载条件。应变成像和基于应变的材料特性估计可作为成像生物标志物来区分健康和患病的椎间盘。此外,基于图像的弹性成像和弛豫测量法可被视为评估纵向研究中椎间盘退变的椎间盘结构和功能的补充测量方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/861e/10508717/4e5c9875b1ec/nihpp-2023.09.01.555817v1-f0001.jpg

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