Cargando…

Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements

Degeneration alters the structural components of the disc and its mechanical behavior. Understanding this pathophysiological process is of great importance, as it may lead to back pain. However, non-invasive methods to characterize the disc mechanics in vivo are lacking. Here, a potential method for...

Descripción completa

Detalles Bibliográficos
Autores principales: Johansson, Frida, Sirat, Zainab, Hebelka, Hanna, Brisby, Helena, Nordström, Fredrik, Lagerstrand, Kerstin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9410209/
https://www.ncbi.nlm.nih.gov/pubmed/36012904
http://dx.doi.org/10.3390/jcm11164665
_version_ 1784775038659985408
author Johansson, Frida
Sirat, Zainab
Hebelka, Hanna
Brisby, Helena
Nordström, Fredrik
Lagerstrand, Kerstin
author_facet Johansson, Frida
Sirat, Zainab
Hebelka, Hanna
Brisby, Helena
Nordström, Fredrik
Lagerstrand, Kerstin
author_sort Johansson, Frida
collection PubMed
description Degeneration alters the structural components of the disc and its mechanical behavior. Understanding this pathophysiological process is of great importance, as it may lead to back pain. However, non-invasive methods to characterize the disc mechanics in vivo are lacking. Here, a potential method for measurements of the intradiscal deformation under stress is presented. The method utilizes a standard MRI protocol, commercial loading equipment, and registration software. The lumbar spine (L1/L2–L5/S1) of 36 human subjects was imaged with and without axial loading of the spine. The resulting images were registered, and changes in the images during the registration were displayed pixel-by-pixel to visualize the internal deformation of the disc. The degeneration grade, disc height, disc angle and tilt angle were determined and correlated with the deformation using multivariate regression analysis. The largest deformation was found at the lower lumbar spine, and differences in regional behaviors between individual discs were found. Weak to moderate correlations between the deformation and different disc characteristics were found, where the degeneration grade and tilt angle were the main contributing factors. To conclude, the image-based method offers a potential tool to study the pathophysiological process of the disc.
format Online
Article
Text
id pubmed-9410209
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94102092022-08-26 Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements Johansson, Frida Sirat, Zainab Hebelka, Hanna Brisby, Helena Nordström, Fredrik Lagerstrand, Kerstin J Clin Med Article Degeneration alters the structural components of the disc and its mechanical behavior. Understanding this pathophysiological process is of great importance, as it may lead to back pain. However, non-invasive methods to characterize the disc mechanics in vivo are lacking. Here, a potential method for measurements of the intradiscal deformation under stress is presented. The method utilizes a standard MRI protocol, commercial loading equipment, and registration software. The lumbar spine (L1/L2–L5/S1) of 36 human subjects was imaged with and without axial loading of the spine. The resulting images were registered, and changes in the images during the registration were displayed pixel-by-pixel to visualize the internal deformation of the disc. The degeneration grade, disc height, disc angle and tilt angle were determined and correlated with the deformation using multivariate regression analysis. The largest deformation was found at the lower lumbar spine, and differences in regional behaviors between individual discs were found. Weak to moderate correlations between the deformation and different disc characteristics were found, where the degeneration grade and tilt angle were the main contributing factors. To conclude, the image-based method offers a potential tool to study the pathophysiological process of the disc. MDPI 2022-08-10 /pmc/articles/PMC9410209/ /pubmed/36012904 http://dx.doi.org/10.3390/jcm11164665 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Johansson, Frida
Sirat, Zainab
Hebelka, Hanna
Brisby, Helena
Nordström, Fredrik
Lagerstrand, Kerstin
Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title_full Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title_fullStr Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title_full_unstemmed Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title_short Non-Invasive Evaluation of Intradiscal Deformation during Axial Loading of the Spine Using Deformation-Field Magnetic Resonance Imaging: A Potential Tool for Micro-Instability Measurements
title_sort non-invasive evaluation of intradiscal deformation during axial loading of the spine using deformation-field magnetic resonance imaging: a potential tool for micro-instability measurements
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9410209/
https://www.ncbi.nlm.nih.gov/pubmed/36012904
http://dx.doi.org/10.3390/jcm11164665
work_keys_str_mv AT johanssonfrida noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements
AT siratzainab noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements
AT hebelkahanna noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements
AT brisbyhelena noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements
AT nordstromfredrik noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements
AT lagerstrandkerstin noninvasiveevaluationofintradiscaldeformationduringaxialloadingofthespineusingdeformationfieldmagneticresonanceimagingapotentialtoolformicroinstabilitymeasurements