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Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source

BACKGROUND: The point spread function (PSF) of positron emission tomography (PET) depends on the position across the field of view (FOV). Reconstruction based on PSF improves spatial resolution and quantitative accuracy. The present study aimed to quantify the effects of PSF correction as a function...

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Autores principales: Murata, Taisuke, Miwa, Kenta, Miyaji, Noriaki, Wagatsuma, Kei, Hasegawa, Tomoyuki, Oda, Keiichi, Umeda, Takuro, Iimori, Takashi, Masuda, Yoshitada, Terauchi, Takashi, Koizumi, Mitsuru
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5080272/
https://www.ncbi.nlm.nih.gov/pubmed/27783373
http://dx.doi.org/10.1186/s40658-016-0162-3
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author Murata, Taisuke
Miwa, Kenta
Miyaji, Noriaki
Wagatsuma, Kei
Hasegawa, Tomoyuki
Oda, Keiichi
Umeda, Takuro
Iimori, Takashi
Masuda, Yoshitada
Terauchi, Takashi
Koizumi, Mitsuru
author_facet Murata, Taisuke
Miwa, Kenta
Miyaji, Noriaki
Wagatsuma, Kei
Hasegawa, Tomoyuki
Oda, Keiichi
Umeda, Takuro
Iimori, Takashi
Masuda, Yoshitada
Terauchi, Takashi
Koizumi, Mitsuru
author_sort Murata, Taisuke
collection PubMed
description BACKGROUND: The point spread function (PSF) of positron emission tomography (PET) depends on the position across the field of view (FOV). Reconstruction based on PSF improves spatial resolution and quantitative accuracy. The present study aimed to quantify the effects of PSF correction as a function of the position of a traceable point-like (22)Na source over the FOV on two PET scanners with a different detector design. METHODS: We used Discovery 600 and Discovery 710 (GE Healthcare) PET scanners and traceable point-like (22)Na sources (<1 MBq) with a spherical absorber design that assures uniform angular distribution of the emitted annihilation photons. The source was moved in three directions at intervals of 1 cm from the center towards the peripheral FOV using a three-dimensional (3D)-positioning robot, and data were acquired over a period of 2 min per point. The PET data were reconstructed by filtered back projection (FBP), the ordered subset expectation maximization (OSEM), OSEM + PSF, and OSEM + PSF + time-of-flight (TOF). Full width at half maximum (FWHM) was determined according to the NEMA method, and total counts in regions of interest (ROI) for each reconstruction were quantified. RESULTS: The radial FWHM of FBP and OSEM increased towards the peripheral FOV, whereas PSF-based reconstruction recovered the FWHM at all points in the FOV of both scanners. The radial FWHM for PSF was 30–50 % lower than that of OSEM at the center of the FOV. The accuracy of PSF correction was independent of detector design. Quantitative values were stable across the FOV in all reconstruction methods. The effect of TOF on spatial resolution and quantitation accuracy was less noticeable. CONCLUSIONS: The traceable (22)Na point-like source allowed the evaluation of spatial resolution and quantitative accuracy across the FOV using different reconstruction methods and scanners. PSF-based reconstruction reduces dependence of the spatial resolution on the position. The quantitative accuracy over the entire FOV of the PET system is good, regardless of the reconstruction methods, although it depends slightly on the position.
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spelling pubmed-50802722016-11-07 Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source Murata, Taisuke Miwa, Kenta Miyaji, Noriaki Wagatsuma, Kei Hasegawa, Tomoyuki Oda, Keiichi Umeda, Takuro Iimori, Takashi Masuda, Yoshitada Terauchi, Takashi Koizumi, Mitsuru EJNMMI Phys Original Article BACKGROUND: The point spread function (PSF) of positron emission tomography (PET) depends on the position across the field of view (FOV). Reconstruction based on PSF improves spatial resolution and quantitative accuracy. The present study aimed to quantify the effects of PSF correction as a function of the position of a traceable point-like (22)Na source over the FOV on two PET scanners with a different detector design. METHODS: We used Discovery 600 and Discovery 710 (GE Healthcare) PET scanners and traceable point-like (22)Na sources (<1 MBq) with a spherical absorber design that assures uniform angular distribution of the emitted annihilation photons. The source was moved in three directions at intervals of 1 cm from the center towards the peripheral FOV using a three-dimensional (3D)-positioning robot, and data were acquired over a period of 2 min per point. The PET data were reconstructed by filtered back projection (FBP), the ordered subset expectation maximization (OSEM), OSEM + PSF, and OSEM + PSF + time-of-flight (TOF). Full width at half maximum (FWHM) was determined according to the NEMA method, and total counts in regions of interest (ROI) for each reconstruction were quantified. RESULTS: The radial FWHM of FBP and OSEM increased towards the peripheral FOV, whereas PSF-based reconstruction recovered the FWHM at all points in the FOV of both scanners. The radial FWHM for PSF was 30–50 % lower than that of OSEM at the center of the FOV. The accuracy of PSF correction was independent of detector design. Quantitative values were stable across the FOV in all reconstruction methods. The effect of TOF on spatial resolution and quantitation accuracy was less noticeable. CONCLUSIONS: The traceable (22)Na point-like source allowed the evaluation of spatial resolution and quantitative accuracy across the FOV using different reconstruction methods and scanners. PSF-based reconstruction reduces dependence of the spatial resolution on the position. The quantitative accuracy over the entire FOV of the PET system is good, regardless of the reconstruction methods, although it depends slightly on the position. Springer International Publishing 2016-10-26 /pmc/articles/PMC5080272/ /pubmed/27783373 http://dx.doi.org/10.1186/s40658-016-0162-3 Text en © The Author(s). 2016 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Original Article
Murata, Taisuke
Miwa, Kenta
Miyaji, Noriaki
Wagatsuma, Kei
Hasegawa, Tomoyuki
Oda, Keiichi
Umeda, Takuro
Iimori, Takashi
Masuda, Yoshitada
Terauchi, Takashi
Koizumi, Mitsuru
Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title_full Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title_fullStr Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title_full_unstemmed Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title_short Evaluation of spatial dependence of point spread function-based PET reconstruction using a traceable point-like (22)Na source
title_sort evaluation of spatial dependence of point spread function-based pet reconstruction using a traceable point-like (22)na source
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5080272/
https://www.ncbi.nlm.nih.gov/pubmed/27783373
http://dx.doi.org/10.1186/s40658-016-0162-3
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