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Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens

Background: Dark-field imaging is a novel imaging modality that allows for the assessment of material interfaces by exploiting the wave character of x-ray. While it has been extensively studied in chest imaging, only little is known about the modality for imaging other tissues. Therefore, the purpos...

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Autores principales: Gassert, Florian T., Urban, Theresa, Kufner, Alexander, Frank, Manuela, Feuerriegel, Georg C., Baum, Thomas, Makowski, Marcus R., Braun, Christian, Pfeiffer, Daniela, Schwaiger, Benedikt J., Pfeiffer, Franz, Gersing, Alexandra S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393038/
https://www.ncbi.nlm.nih.gov/pubmed/37534364
http://dx.doi.org/10.3389/fphys.2023.1217007
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author Gassert, Florian T.
Urban, Theresa
Kufner, Alexander
Frank, Manuela
Feuerriegel, Georg C.
Baum, Thomas
Makowski, Marcus R.
Braun, Christian
Pfeiffer, Daniela
Schwaiger, Benedikt J.
Pfeiffer, Franz
Gersing, Alexandra S.
author_facet Gassert, Florian T.
Urban, Theresa
Kufner, Alexander
Frank, Manuela
Feuerriegel, Georg C.
Baum, Thomas
Makowski, Marcus R.
Braun, Christian
Pfeiffer, Daniela
Schwaiger, Benedikt J.
Pfeiffer, Franz
Gersing, Alexandra S.
author_sort Gassert, Florian T.
collection PubMed
description Background: Dark-field imaging is a novel imaging modality that allows for the assessment of material interfaces by exploiting the wave character of x-ray. While it has been extensively studied in chest imaging, only little is known about the modality for imaging other tissues. Therefore, the purpose of this study was to evaluate whether a clinical X-ray dark-field scanner prototype allows for the assessment of osteoporosis. Materials and methods: In this prospective study we examined human cadaveric lumbar spine specimens (vertebral segments L2 to L4). We used a clinical prototype for dark-field radiography that yields both attenuation and dark-field images. All specimens were scanned in lateral orientation in vertical and horizontal position. All specimens were additionally imaged with CT as reference. Bone mineral density (BMD) values were derived from asynchronously calibrated quantitative CT measurements. Correlations between attenuation signal, dark-field signal and BMD were assessed using Spearman’s rank correlation coefficients. The capability of the dark-field signal for the detection of osteoporosis/osteopenia was evaluated with receiver operating characteristics (ROC) curve analysis. Results: A total of 58 vertebrae from 20 human cadaveric spine specimens (mean age, 73 years ±13 [standard deviation]; 11 women) were studied. The dark-field signal was positively correlated with the BMD, both in vertical (r = 0.56, p < .001) and horizontal position (r = 0.43, p < .001). Also, the dark-field signal ratio was positively correlated with BMD (r = 0.30, p = .02). No correlation was found between the signal ratio of attenuation signal and BMD (r = 0.14, p = .29). For the differentiation between specimens with and without osteoporosis/osteopenia, the area under the ROC curve (AUC) was 0.80 for the dark-field signal in vertical position. Conclusion: Dark-field imaging allows for the differentiation between spine specimens with and without osteoporosis/osteopenia and may therefore be a potential biomarker for bone stability.
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spelling pubmed-103930382023-08-02 Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens Gassert, Florian T. Urban, Theresa Kufner, Alexander Frank, Manuela Feuerriegel, Georg C. Baum, Thomas Makowski, Marcus R. Braun, Christian Pfeiffer, Daniela Schwaiger, Benedikt J. Pfeiffer, Franz Gersing, Alexandra S. Front Physiol Physiology Background: Dark-field imaging is a novel imaging modality that allows for the assessment of material interfaces by exploiting the wave character of x-ray. While it has been extensively studied in chest imaging, only little is known about the modality for imaging other tissues. Therefore, the purpose of this study was to evaluate whether a clinical X-ray dark-field scanner prototype allows for the assessment of osteoporosis. Materials and methods: In this prospective study we examined human cadaveric lumbar spine specimens (vertebral segments L2 to L4). We used a clinical prototype for dark-field radiography that yields both attenuation and dark-field images. All specimens were scanned in lateral orientation in vertical and horizontal position. All specimens were additionally imaged with CT as reference. Bone mineral density (BMD) values were derived from asynchronously calibrated quantitative CT measurements. Correlations between attenuation signal, dark-field signal and BMD were assessed using Spearman’s rank correlation coefficients. The capability of the dark-field signal for the detection of osteoporosis/osteopenia was evaluated with receiver operating characteristics (ROC) curve analysis. Results: A total of 58 vertebrae from 20 human cadaveric spine specimens (mean age, 73 years ±13 [standard deviation]; 11 women) were studied. The dark-field signal was positively correlated with the BMD, both in vertical (r = 0.56, p < .001) and horizontal position (r = 0.43, p < .001). Also, the dark-field signal ratio was positively correlated with BMD (r = 0.30, p = .02). No correlation was found between the signal ratio of attenuation signal and BMD (r = 0.14, p = .29). For the differentiation between specimens with and without osteoporosis/osteopenia, the area under the ROC curve (AUC) was 0.80 for the dark-field signal in vertical position. Conclusion: Dark-field imaging allows for the differentiation between spine specimens with and without osteoporosis/osteopenia and may therefore be a potential biomarker for bone stability. Frontiers Media S.A. 2023-07-17 /pmc/articles/PMC10393038/ /pubmed/37534364 http://dx.doi.org/10.3389/fphys.2023.1217007 Text en Copyright © 2023 Gassert, Urban, Kufner, Frank, Feuerriegel, Baum, Makowski, Braun, Pfeiffer, Schwaiger, Pfeiffer and Gersing. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Gassert, Florian T.
Urban, Theresa
Kufner, Alexander
Frank, Manuela
Feuerriegel, Georg C.
Baum, Thomas
Makowski, Marcus R.
Braun, Christian
Pfeiffer, Daniela
Schwaiger, Benedikt J.
Pfeiffer, Franz
Gersing, Alexandra S.
Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title_full Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title_fullStr Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title_full_unstemmed Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title_short Dark-field X-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
title_sort dark-field x-ray imaging for the assessment of osteoporosis in human lumbar spine specimens
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10393038/
https://www.ncbi.nlm.nih.gov/pubmed/37534364
http://dx.doi.org/10.3389/fphys.2023.1217007
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