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Published in: Annals of Nuclear Medicine 1/2013

Open Access 01-01-2013 | Original article

Performance of a semiconductor SPECT system: comparison with a conventional Anger-type SPECT instrument

Authors: Yasuyuki Takahashi, Masao Miyagawa, Yoshiko Nishiyama, Hayato Ishimura, Teruhito Mochizuki

Published in: Annals of Nuclear Medicine | Issue 1/2013

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Abstract

Objective

The performance of a new single photon emission computed tomography (SPECT) scanner with a cadmium-zinc-telluride (CZT) solid-state semiconductor detector (Discovery NM 530c; D530c) was evaluated and compared to a conventional Anger-type SPECT with a dual-detector camera (Infinia).

Methods

Three different phantom studies were performed. Full width at half maximum (FWHM) was measured using line sources placed at different locations in a cylindrical phantom. Uniformity was measured using cylindrical phantoms with 3 different diameters (80, 120, and 160 mm). Spatial resolution was evaluated using hot-rod phantoms of various diameters (5, 9, 13, 16, and 20 mm). Three different myocardial phantom studies were also performed, acquiring projection data with and without defects, and evaluating the interference of liver and gallbladder radioactivity. In a clinical study, the D530c employed list-mode raw data acquisition with electrocardiogram (ECG)-gated acquisition over a 10-min period. From the 10-min projection data, 1-, 3-, 5-, 7- and 10-min SPECT images were reconstructed.

Results

The FWHM of the D503c was 1.73–3.48 mm (without water) and 3.88–6.64 mm (with water), whereas the FWHM of the Infinia was 8.17–12.63 mm (without water) and 15.48–16.28 mm (with water). Non-uniformity was larger for the D530c than for the Infinia. Truncation artifacts were also observed with the D530c in a Φ160 mm phantom. The contrast ratio, as defined by myocardial defect/non-defect ratio, was better for the D530c than for the Infinia, and the influence from liver and gallbladder radioactivities was less. Quantitative gated SPECT (QGS) software demonstrated significant differences between data captured over a 10-min period, relative to those acquired over periods of <5 min; there was no difference between ejection fractions calculated using data capture for periods ≥5 min (p < 0.05).

Conclusions

The D530c is superior to the Infinia, with regard to both spatial resolution and sensitivity. In this study, these advantages were confirmed by the myocardial phantom and in a clinical setting, using the QGS software.
Literature
1.
go back to reference Germano G, Kiat H, Kavanagh P, Moriel M, Mazzanti M, Su H, et al. Automatic quantification of ejection fraction from gated myocardial perfusion SPECT. J Nucl Med. 1995;36:2138–47.PubMed Germano G, Kiat H, Kavanagh P, Moriel M, Mazzanti M, Su H, et al. Automatic quantification of ejection fraction from gated myocardial perfusion SPECT. J Nucl Med. 1995;36:2138–47.PubMed
2.
go back to reference Klocke FJ, Baird MG, Bateman TM, Berman DS, Carabello BA, Cerqueira MD, et al. ACC/AHA/ASNC guidelines for the clinical use of cardiac radionuclide imaging. A report of the American college of cardiology/American heart association task force on practice guidelines (ACC/AHA/ASNC committee to revise the 1995 guidelines for the clinical use of cardiac radionuclide imaging). Circulation. 2003;108:1404–18.PubMedCrossRef Klocke FJ, Baird MG, Bateman TM, Berman DS, Carabello BA, Cerqueira MD, et al. ACC/AHA/ASNC guidelines for the clinical use of cardiac radionuclide imaging. A report of the American college of cardiology/American heart association task force on practice guidelines (ACC/AHA/ASNC committee to revise the 1995 guidelines for the clinical use of cardiac radionuclide imaging). Circulation. 2003;108:1404–18.PubMedCrossRef
3.
go back to reference Hesse B, Tagil K, Cuocolo A, Anagnostopoulos C, Bardies M, Bax J, et al. EANM/ESC procedural guideline for myocardial perfusion imaging in nuclear cardiology. Eur J Nucl Med Mol Imaging. 2005;32:855–97.PubMedCrossRef Hesse B, Tagil K, Cuocolo A, Anagnostopoulos C, Bardies M, Bax J, et al. EANM/ESC procedural guideline for myocardial perfusion imaging in nuclear cardiology. Eur J Nucl Med Mol Imaging. 2005;32:855–97.PubMedCrossRef
4.
go back to reference Herzog BA, Buechel RR, Kats R, Brueckner M, Husmann L, Burger IA, et al. Nuclear myocardial perfusion imaging with a cadmium-zinc-telluride detector technique: optimized protocol for scan time reduction. J Nucl Med. 2010;51:46–51.PubMedCrossRef Herzog BA, Buechel RR, Kats R, Brueckner M, Husmann L, Burger IA, et al. Nuclear myocardial perfusion imaging with a cadmium-zinc-telluride detector technique: optimized protocol for scan time reduction. J Nucl Med. 2010;51:46–51.PubMedCrossRef
5.
go back to reference Buechel RR, Herzog BA, Husmann L, Burger IA, Pazhenkottil AP, Treyer V, et al. Ultrafast nuclear myocardial perfusion imaging on a new gamma camera with semiconductor detector technique: first clinical validation. Eur J Nucl Med Mol Imaging. 2010;37:773–8.PubMedCrossRef Buechel RR, Herzog BA, Husmann L, Burger IA, Pazhenkottil AP, Treyer V, et al. Ultrafast nuclear myocardial perfusion imaging on a new gamma camera with semiconductor detector technique: first clinical validation. Eur J Nucl Med Mol Imaging. 2010;37:773–8.PubMedCrossRef
6.
go back to reference Bocher M, Blevis I, Tsukerman L, Shrem Y, Kovalski G, Volokh L. A fast cardiac gamma camera with dynamic SPECT capabilities: design, system validation and future potential. Eur J Nucl Med Mol Imaging. 2010;37:1887–902.PubMedCrossRef Bocher M, Blevis I, Tsukerman L, Shrem Y, Kovalski G, Volokh L. A fast cardiac gamma camera with dynamic SPECT capabilities: design, system validation and future potential. Eur J Nucl Med Mol Imaging. 2010;37:1887–902.PubMedCrossRef
7.
go back to reference Takahashi Y, Murase K, Higashino H, Sogabe I, Sakamoto K. Receiver operating characteristic (ROC) analysis of image reconstructed with iterative expectation maximization algorithms. Ann Nucl Med. 2001;15:521–5.PubMedCrossRef Takahashi Y, Murase K, Higashino H, Sogabe I, Sakamoto K. Receiver operating characteristic (ROC) analysis of image reconstructed with iterative expectation maximization algorithms. Ann Nucl Med. 2001;15:521–5.PubMedCrossRef
8.
go back to reference Erlandsson K, Kacperski K, van Gramberg D, Hutton BF. Performance evaluation of D-SPECT: a novel SPECT system for nuclear cardiology. Phys Med Biol. 2009;54:2635–49.PubMedCrossRef Erlandsson K, Kacperski K, van Gramberg D, Hutton BF. Performance evaluation of D-SPECT: a novel SPECT system for nuclear cardiology. Phys Med Biol. 2009;54:2635–49.PubMedCrossRef
9.
go back to reference Japanese engineering standards of radiological apparatus (JESRA). Test condition and its expressions of gamma camera performance. 2009;X-0051*B:37–39 (in Japanese). Japanese engineering standards of radiological apparatus (JESRA). Test condition and its expressions of gamma camera performance. 2009;X-0051*B:37–39 (in Japanese).
10.
go back to reference Hebert T, Leath R. A generalized EM algorithm for 3D Bayesian reconstruction from Poisson data using Gibbs priors. IEEE Trans Med Imaging. 1989;8:194–202.PubMedCrossRef Hebert T, Leath R. A generalized EM algorithm for 3D Bayesian reconstruction from Poisson data using Gibbs priors. IEEE Trans Med Imaging. 1989;8:194–202.PubMedCrossRef
11.
go back to reference Gimelli A, Bottai M, Genovesi D, Giorgetti A, Martino F, Marzullo P. High diagnostic accuracy of low-dose gated-SPECT with solid-state ultrafast detectors: preliminary clinical results. Eur J Nucl Med Mol Imaging. 2012;39:83–90.PubMedCrossRef Gimelli A, Bottai M, Genovesi D, Giorgetti A, Martino F, Marzullo P. High diagnostic accuracy of low-dose gated-SPECT with solid-state ultrafast detectors: preliminary clinical results. Eur J Nucl Med Mol Imaging. 2012;39:83–90.PubMedCrossRef
12.
go back to reference Herzog BA, Buechel RR, Husmann L, Pazhenkottil AP, Burger IA, Wolfrum M, et al. Validation of CT attenuation correction for high-speed myocardial perfusion imaging using a novel cadmium-zinc-telluride detector technique. J Nucl Med. 2010;51:1539–44.PubMedCrossRef Herzog BA, Buechel RR, Husmann L, Pazhenkottil AP, Burger IA, Wolfrum M, et al. Validation of CT attenuation correction for high-speed myocardial perfusion imaging using a novel cadmium-zinc-telluride detector technique. J Nucl Med. 2010;51:1539–44.PubMedCrossRef
13.
go back to reference Germano G, Chua T, Kiat H, Areeda J, Berman D. A quantitative phantom analysis of artifacts due to hepatic activity in technetium-99 m myocardial perfusion SPECT studies. J Nucl Med. 1994;35:356–9.PubMed Germano G, Chua T, Kiat H, Areeda J, Berman D. A quantitative phantom analysis of artifacts due to hepatic activity in technetium-99 m myocardial perfusion SPECT studies. J Nucl Med. 1994;35:356–9.PubMed
14.
go back to reference Matsunari I, Tanishima Y, Taki J, Ono K, Nishide H, Fujino S, et al. Early and delayed technetium-99 m-tetrofosmin myocardial SPECT compared in normal volunteers. J Nucl Med. 1996;37:1622–6.PubMed Matsunari I, Tanishima Y, Taki J, Ono K, Nishide H, Fujino S, et al. Early and delayed technetium-99 m-tetrofosmin myocardial SPECT compared in normal volunteers. J Nucl Med. 1996;37:1622–6.PubMed
Metadata
Title
Performance of a semiconductor SPECT system: comparison with a conventional Anger-type SPECT instrument
Authors
Yasuyuki Takahashi
Masao Miyagawa
Yoshiko Nishiyama
Hayato Ishimura
Teruhito Mochizuki
Publication date
01-01-2013
Publisher
Springer Japan
Published in
Annals of Nuclear Medicine / Issue 1/2013
Print ISSN: 0914-7187
Electronic ISSN: 1864-6433
DOI
https://doi.org/10.1007/s12149-012-0653-9

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