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Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres

The aim of our study was to compare dosimetry methods for yttrium-90 ((90)Y) positron emission tomography/computed tomography (PET/CT). Twenty-five patients were taken to a PET/CT suite following therapy with (90)Y microspheres. The low mA, nondiagnostic CT images were used for attenuation correctio...

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Autor principal: Knešaurek, Karin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Wolters Kluwer - Medknow 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7875028/
https://www.ncbi.nlm.nih.gov/pubmed/33623505
http://dx.doi.org/10.4103/wjnm.WJNM_23_20
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author Knešaurek, Karin
author_facet Knešaurek, Karin
author_sort Knešaurek, Karin
collection PubMed
description The aim of our study was to compare dosimetry methods for yttrium-90 ((90)Y) positron emission tomography/computed tomography (PET/CT). Twenty-five patients were taken to a PET/CT suite following therapy with (90)Y microspheres. The low mA, nondiagnostic CT images were used for attenuation correction and localization of the (90)Y microspheres. The acquisition time was 15 min, the reconstruction matrix size was 200 mm × 200 mm × 75 mm, and voxel size was 4.07 mm × 4.07 mm × 3.00 mm. Two software packages, MIM 6.8 and Planet Dose, were utilized to calculate (90)Y dosimetry. Three methods were used for voxel-based dosimetry calculations: the local deposition method (LDM), LDM with scaling (LDMwS) for known injected activity, and a dose point kernel (DPK) method using the MIRD kernel. Only the DPK approach was applied to the Planet Dose software. LDM and LDMwS were only applied to the MIM software. The average total liver dosimetry values (mean ± standard deviation) were 60.93 ± 28.62 Gy, 53.59 ± 23.47 Gy, 55.33 ± 24.80 Gy, and 54.25 ± 23.70 Gy for LDMwS, LDM, DPK with MIM, and DPK with Planet Dose (DOSI), respectively. In most cases, the LDMwS method produced slightly higher dosimetry values than the other methods. The MIM and Planet Dose DPK dosimetry values (i.e., DPK vs. DOSI) were highly comparable. Bland–Altman analysis calculated a mean difference of 1.1 ± 2.2 Gy. The repeatability coefficient was 4.4 (7.9% of the mean). The MIM and Planet Dose DPK dosimetry values were practically interchangeable. (90)Y dosimetry values obtained by all methods were similar, but LDMwS tended to produce slightly higher values.
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spelling pubmed-78750282021-02-22 Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres Knešaurek, Karin World J Nucl Med Original Article The aim of our study was to compare dosimetry methods for yttrium-90 ((90)Y) positron emission tomography/computed tomography (PET/CT). Twenty-five patients were taken to a PET/CT suite following therapy with (90)Y microspheres. The low mA, nondiagnostic CT images were used for attenuation correction and localization of the (90)Y microspheres. The acquisition time was 15 min, the reconstruction matrix size was 200 mm × 200 mm × 75 mm, and voxel size was 4.07 mm × 4.07 mm × 3.00 mm. Two software packages, MIM 6.8 and Planet Dose, were utilized to calculate (90)Y dosimetry. Three methods were used for voxel-based dosimetry calculations: the local deposition method (LDM), LDM with scaling (LDMwS) for known injected activity, and a dose point kernel (DPK) method using the MIRD kernel. Only the DPK approach was applied to the Planet Dose software. LDM and LDMwS were only applied to the MIM software. The average total liver dosimetry values (mean ± standard deviation) were 60.93 ± 28.62 Gy, 53.59 ± 23.47 Gy, 55.33 ± 24.80 Gy, and 54.25 ± 23.70 Gy for LDMwS, LDM, DPK with MIM, and DPK with Planet Dose (DOSI), respectively. In most cases, the LDMwS method produced slightly higher dosimetry values than the other methods. The MIM and Planet Dose DPK dosimetry values (i.e., DPK vs. DOSI) were highly comparable. Bland–Altman analysis calculated a mean difference of 1.1 ± 2.2 Gy. The repeatability coefficient was 4.4 (7.9% of the mean). The MIM and Planet Dose DPK dosimetry values were practically interchangeable. (90)Y dosimetry values obtained by all methods were similar, but LDMwS tended to produce slightly higher values. Wolters Kluwer - Medknow 2020-08-22 /pmc/articles/PMC7875028/ /pubmed/33623505 http://dx.doi.org/10.4103/wjnm.WJNM_23_20 Text en Copyright: © 2020 World Journal of Nuclear Medicine http://creativecommons.org/licenses/by-nc-sa/4.0 This is an open access journal, and articles are distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 License, which allows others to remix, tweak, and build upon the work non-commercially, as long as appropriate credit is given and the new creations are licensed under the identical terms.
spellingShingle Original Article
Knešaurek, Karin
Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title_full Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title_fullStr Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title_full_unstemmed Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title_short Comparison of posttherapy (90)Y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)Y microspheres
title_sort comparison of posttherapy (90)y positron emission tomography/computed tomography dosimetry methods in liver therapy with (90)y microspheres
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7875028/
https://www.ncbi.nlm.nih.gov/pubmed/33623505
http://dx.doi.org/10.4103/wjnm.WJNM_23_20
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