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Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties

Conventional medical imaging phantoms are limited by simplified geometry and radiographic skeletal homogeneity, which confines their usability for image quality assessment and radiation dosimetry. These challenges can be addressed by additive manufacturing technology, colloquially called 3D printing...

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Autores principales: Hatamikia, Sepideh, Oberoi, Gunpreet, Unger, Ewald, Kronreif, Gernot, Kettenbach, Joachim, Buschmann, Martin, Figl, Michael, Knäusl, Barbara, Moscato, Francesco, Birkfellner, Wolfgang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7225309/
https://www.ncbi.nlm.nih.gov/pubmed/32457883
http://dx.doi.org/10.3389/fbioe.2020.00385
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author Hatamikia, Sepideh
Oberoi, Gunpreet
Unger, Ewald
Kronreif, Gernot
Kettenbach, Joachim
Buschmann, Martin
Figl, Michael
Knäusl, Barbara
Moscato, Francesco
Birkfellner, Wolfgang
author_facet Hatamikia, Sepideh
Oberoi, Gunpreet
Unger, Ewald
Kronreif, Gernot
Kettenbach, Joachim
Buschmann, Martin
Figl, Michael
Knäusl, Barbara
Moscato, Francesco
Birkfellner, Wolfgang
author_sort Hatamikia, Sepideh
collection PubMed
description Conventional medical imaging phantoms are limited by simplified geometry and radiographic skeletal homogeneity, which confines their usability for image quality assessment and radiation dosimetry. These challenges can be addressed by additive manufacturing technology, colloquially called 3D printing, which provides accurate anatomical replication and flexibility in material manipulation. In this study, we used Computed Tomography (CT)-based modified PolyJet(TM) 3D printing technology to print a hollow thorax phantom simulating skeletal morphology of the patient. To achieve realistic heterogenous skeletal radiation attenuation, we developed a novel radiopaque amalgamate constituting of epoxy, polypropylene and bone meal powder in twelve different ratios. We performed CT analysis for quantification of material radiodensity (in Hounsfield Units, HU) and for identification of specific compositions corresponding to the various skeletal structures in the thorax. We filled the skeletal structures with their respective radiopaque amalgamates. The phantom and isolated 3D printed rib specimens were rescanned by CT for reproducibility tests regarding verification of radiodensity and geometry. Our results showed that structural densities in the range of 42–705HU could be achieved. The radiodensity of the reconstructed phantom was comparable to the three skeletal structures investigated in a real patient thorax CT: ribs, ventral vertebral body and dorsal vertebral body. Reproducibility tests based on physical dimensional comparison between the patient and phantom CT-based segmentation displayed 97% of overlap in the range of 0.00–4.57 mm embracing the anatomical accuracy. Thus, the additively manufactured anthropomorphic thorax phantom opens new vistas for imaging- and radiation-based patient care in precision medicine.
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spelling pubmed-72253092020-05-25 Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties Hatamikia, Sepideh Oberoi, Gunpreet Unger, Ewald Kronreif, Gernot Kettenbach, Joachim Buschmann, Martin Figl, Michael Knäusl, Barbara Moscato, Francesco Birkfellner, Wolfgang Front Bioeng Biotechnol Bioengineering and Biotechnology Conventional medical imaging phantoms are limited by simplified geometry and radiographic skeletal homogeneity, which confines their usability for image quality assessment and radiation dosimetry. These challenges can be addressed by additive manufacturing technology, colloquially called 3D printing, which provides accurate anatomical replication and flexibility in material manipulation. In this study, we used Computed Tomography (CT)-based modified PolyJet(TM) 3D printing technology to print a hollow thorax phantom simulating skeletal morphology of the patient. To achieve realistic heterogenous skeletal radiation attenuation, we developed a novel radiopaque amalgamate constituting of epoxy, polypropylene and bone meal powder in twelve different ratios. We performed CT analysis for quantification of material radiodensity (in Hounsfield Units, HU) and for identification of specific compositions corresponding to the various skeletal structures in the thorax. We filled the skeletal structures with their respective radiopaque amalgamates. The phantom and isolated 3D printed rib specimens were rescanned by CT for reproducibility tests regarding verification of radiodensity and geometry. Our results showed that structural densities in the range of 42–705HU could be achieved. The radiodensity of the reconstructed phantom was comparable to the three skeletal structures investigated in a real patient thorax CT: ribs, ventral vertebral body and dorsal vertebral body. Reproducibility tests based on physical dimensional comparison between the patient and phantom CT-based segmentation displayed 97% of overlap in the range of 0.00–4.57 mm embracing the anatomical accuracy. Thus, the additively manufactured anthropomorphic thorax phantom opens new vistas for imaging- and radiation-based patient care in precision medicine. Frontiers Media S.A. 2020-05-08 /pmc/articles/PMC7225309/ /pubmed/32457883 http://dx.doi.org/10.3389/fbioe.2020.00385 Text en Copyright © 2020 Hatamikia, Oberoi, Unger, Kronreif, Kettenbach, Buschmann, Figl, Knäusl, Moscato and Birkfellner. http://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 Bioengineering and Biotechnology
Hatamikia, Sepideh
Oberoi, Gunpreet
Unger, Ewald
Kronreif, Gernot
Kettenbach, Joachim
Buschmann, Martin
Figl, Michael
Knäusl, Barbara
Moscato, Francesco
Birkfellner, Wolfgang
Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title_full Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title_fullStr Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title_full_unstemmed Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title_short Additively Manufactured Patient-Specific Anthropomorphic Thorax Phantom With Realistic Radiation Attenuation Properties
title_sort additively manufactured patient-specific anthropomorphic thorax phantom with realistic radiation attenuation properties
topic Bioengineering and Biotechnology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7225309/
https://www.ncbi.nlm.nih.gov/pubmed/32457883
http://dx.doi.org/10.3389/fbioe.2020.00385
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