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An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards

In medical imaging, clinicians, researchers and technicians have begun to use 3D printing to create specialized phantoms to replace commercial ones due to their customizable and iterative nature. Presented here is the design of a 3D printed open source, reusable magnetic resonance imaging (MRI) phan...

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Autores principales: Cox, BL, Ludwig, KD, Adamson, EB, Eliceiri, KW, Fain, SB
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5790173/
https://www.ncbi.nlm.nih.gov/pubmed/29399370
http://dx.doi.org/10.1088/2057-1976/aa9491
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author Cox, BL
Ludwig, KD
Adamson, EB
Eliceiri, KW
Fain, SB
author_facet Cox, BL
Ludwig, KD
Adamson, EB
Eliceiri, KW
Fain, SB
author_sort Cox, BL
collection PubMed
description In medical imaging, clinicians, researchers and technicians have begun to use 3D printing to create specialized phantoms to replace commercial ones due to their customizable and iterative nature. Presented here is the design of a 3D printed open source, reusable magnetic resonance imaging (MRI) phantom, capable of flood-filling, with removable samples for measurements of contrast agent solutions and reference standards, and for use in evaluating acquisition techniques and image reconstruction performance. The phantom was designed using SolidWorks, a computer-aided design software package. The phantom consists of custom and off-the-shelf parts and incorporates an air hole and Luer Lock system to aid in flood filling, a marker for orientation of samples in the filled mode and bolt and tube holes for assembly. The cost of construction for all materials is under $90. All design files are open-source and available for download. To demonstrate utility, B(0) field mapping was performed using a series of gadolinium concentrations in both the unfilled and flood-filled mode. An excellent linear agreement (R(2)>0.998) was observed between measured relaxation rates (R(1)/R(2)) and gadolinium concentration. The phantom provides a reliable setup to test data acquisition and reconstruction methods and verify physical alignment in alternative nuclei MRI techniques (e.g. carbon-13 and fluorine-19 MRI). A cost-effective, open-source MRI phantom design for repeated quantitative measurement of contrast agents and reference standards in preclinical research is presented. Specifically, the work is an example of how the emerging technology of 3D printing improves flexibility and access for custom phantom design.
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spelling pubmed-57901732019-03-01 An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards Cox, BL Ludwig, KD Adamson, EB Eliceiri, KW Fain, SB Biomed Phys Eng Express Article In medical imaging, clinicians, researchers and technicians have begun to use 3D printing to create specialized phantoms to replace commercial ones due to their customizable and iterative nature. Presented here is the design of a 3D printed open source, reusable magnetic resonance imaging (MRI) phantom, capable of flood-filling, with removable samples for measurements of contrast agent solutions and reference standards, and for use in evaluating acquisition techniques and image reconstruction performance. The phantom was designed using SolidWorks, a computer-aided design software package. The phantom consists of custom and off-the-shelf parts and incorporates an air hole and Luer Lock system to aid in flood filling, a marker for orientation of samples in the filled mode and bolt and tube holes for assembly. The cost of construction for all materials is under $90. All design files are open-source and available for download. To demonstrate utility, B(0) field mapping was performed using a series of gadolinium concentrations in both the unfilled and flood-filled mode. An excellent linear agreement (R(2)>0.998) was observed between measured relaxation rates (R(1)/R(2)) and gadolinium concentration. The phantom provides a reliable setup to test data acquisition and reconstruction methods and verify physical alignment in alternative nuclei MRI techniques (e.g. carbon-13 and fluorine-19 MRI). A cost-effective, open-source MRI phantom design for repeated quantitative measurement of contrast agents and reference standards in preclinical research is presented. Specifically, the work is an example of how the emerging technology of 3D printing improves flexibility and access for custom phantom design. 2018-01-25 2018-03 /pmc/articles/PMC5790173/ /pubmed/29399370 http://dx.doi.org/10.1088/2057-1976/aa9491 Text en After the embargo period, everyone is permitted to use copy and redistribute this article for non-commercial purposes only, provided that they adhere to all the terms of the licence https://creativecommons.org/licenses/by-nc-nd/3.0
spellingShingle Article
Cox, BL
Ludwig, KD
Adamson, EB
Eliceiri, KW
Fain, SB
An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title_full An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title_fullStr An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title_full_unstemmed An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title_short An open source, 3D printed preclinical MRI phantom for repeated measures of contrast agents and reference standards
title_sort open source, 3d printed preclinical mri phantom for repeated measures of contrast agents and reference standards
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5790173/
https://www.ncbi.nlm.nih.gov/pubmed/29399370
http://dx.doi.org/10.1088/2057-1976/aa9491
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