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A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study

This study examined the feasibility of quantitatively evaluating multiple biokinetic models and established the validity of the different compartment models using an assembled water phantom. Most commercialized phantoms are made to survey the imaging system since this is essential to increase the di...

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Autores principales: Yeh, Da-Ming, Chen, Ching-Yuan, Tang, Jing-Fa, Pan, Lung-Kwang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5739403/
https://www.ncbi.nlm.nih.gov/pubmed/29267305
http://dx.doi.org/10.1371/journal.pone.0189244
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author Yeh, Da-Ming
Chen, Ching-Yuan
Tang, Jing-Fa
Pan, Lung-Kwang
author_facet Yeh, Da-Ming
Chen, Ching-Yuan
Tang, Jing-Fa
Pan, Lung-Kwang
author_sort Yeh, Da-Ming
collection PubMed
description This study examined the feasibility of quantitatively evaluating multiple biokinetic models and established the validity of the different compartment models using an assembled water phantom. Most commercialized phantoms are made to survey the imaging system since this is essential to increase the diagnostic accuracy for quality assurance. In contrast, few customized phantoms are specifically made to represent multi-compartment biokinetic models. This is because the complicated calculations as defined to solve the biokinetic models and the time-consuming verifications of the obtained solutions are impeded greatly the progress over the past decade. Nevertheless, in this work, five biokinetic models were separately defined by five groups of simultaneous differential equations to obtain the time-dependent radioactive concentration changes inside the water phantom. The water phantom was assembled by seven acrylic boxes in four different sizes, and the boxes were linked to varying combinations of hoses to signify the multiple biokinetic models from the biomedical perspective. The boxes that were connected by hoses were then regarded as a closed water loop with only one infusion and drain. 129.1±24.2 MBq of Tc-99m labeled methylene diphosphonate (MDP) solution was thoroughly infused into the water boxes before gamma scanning; then the water was replaced with de-ionized water to simulate the biological removal rate among the boxes. The water was driven by an automatic infusion pump at 6.7 c.c./min, while the biological half-life of the four different-sized boxes (64, 144, 252, and 612 c.c.) was 4.8, 10.7, 18.8, and 45.5 min, respectively. The five models of derived time-dependent concentrations for the boxes were estimated either by a self-developed program run in MATLAB or by scanning via a gamma camera facility. Either agreement or disagreement between the practical scanning and the theoretical prediction in five models was thoroughly discussed. The derived biokinetic model represented the metabolic mechanism in the human body and helped to solidify the internal circulatory system into concert with numerical verification.
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spelling pubmed-57394032018-01-10 A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study Yeh, Da-Ming Chen, Ching-Yuan Tang, Jing-Fa Pan, Lung-Kwang PLoS One Research Article This study examined the feasibility of quantitatively evaluating multiple biokinetic models and established the validity of the different compartment models using an assembled water phantom. Most commercialized phantoms are made to survey the imaging system since this is essential to increase the diagnostic accuracy for quality assurance. In contrast, few customized phantoms are specifically made to represent multi-compartment biokinetic models. This is because the complicated calculations as defined to solve the biokinetic models and the time-consuming verifications of the obtained solutions are impeded greatly the progress over the past decade. Nevertheless, in this work, five biokinetic models were separately defined by five groups of simultaneous differential equations to obtain the time-dependent radioactive concentration changes inside the water phantom. The water phantom was assembled by seven acrylic boxes in four different sizes, and the boxes were linked to varying combinations of hoses to signify the multiple biokinetic models from the biomedical perspective. The boxes that were connected by hoses were then regarded as a closed water loop with only one infusion and drain. 129.1±24.2 MBq of Tc-99m labeled methylene diphosphonate (MDP) solution was thoroughly infused into the water boxes before gamma scanning; then the water was replaced with de-ionized water to simulate the biological removal rate among the boxes. The water was driven by an automatic infusion pump at 6.7 c.c./min, while the biological half-life of the four different-sized boxes (64, 144, 252, and 612 c.c.) was 4.8, 10.7, 18.8, and 45.5 min, respectively. The five models of derived time-dependent concentrations for the boxes were estimated either by a self-developed program run in MATLAB or by scanning via a gamma camera facility. Either agreement or disagreement between the practical scanning and the theoretical prediction in five models was thoroughly discussed. The derived biokinetic model represented the metabolic mechanism in the human body and helped to solidify the internal circulatory system into concert with numerical verification. Public Library of Science 2017-12-21 /pmc/articles/PMC5739403/ /pubmed/29267305 http://dx.doi.org/10.1371/journal.pone.0189244 Text en © 2017 Yeh et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Yeh, Da-Ming
Chen, Ching-Yuan
Tang, Jing-Fa
Pan, Lung-Kwang
A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title_full A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title_fullStr A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title_full_unstemmed A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title_short A quantitative evaluation of multiple biokinetic models using an assembled water phantom: A feasibility study
title_sort quantitative evaluation of multiple biokinetic models using an assembled water phantom: a feasibility study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5739403/
https://www.ncbi.nlm.nih.gov/pubmed/29267305
http://dx.doi.org/10.1371/journal.pone.0189244
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