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Erschienen in: Annals of Nuclear Medicine 11/2019

14.08.2019 | Original Article

Clinical utility of the normal database of 123I-iodoamphetamine brain perfusion single photon emission computed tomography for statistical analysis using computed tomography-based attenuation correction: a multicenter study

verfasst von: Takahiro Yamazaki, Yoshitaka Inui, Takashi Ichihara, Masaki Uno, Seiichiro Ota, Akihiro Toyoda, Masanobu Ishiguro, Takashi Kato, Kengo Ito, Hiroshi Toyama

Erschienen in: Annals of Nuclear Medicine | Ausgabe 11/2019

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Abstract

Objectives

We have established a common normal database (NDB) with applicability in multicenter settings for the statistical analysis of brain perfusion single photon emission computed tomography (SPECT) with triple energy window scatter correction, computed tomography-based attenuation correction (CTAC), and spatial resolution compensation. This study aimed to compare the CTAC normal database (CTAC-NDB) with conventional normal databases for the statistical analysis of 123I-iodoamphetamine (123I-IMP) brain perfusion SPECT at three institutions and to assess the clinical efficiency of CTAC-NDB.

Methods

We recruited 45 patients (26 men and 19 women; mean age, 74.2 ± 3.9 years; Mini-Mental State Examination score, 19.8 ± 6.1) with Alzheimer’s disease (AD, n = 26), dementia with Lewy bodies (DLB, n = 9), and mild cognitive impairment (n = 10) from three institutions. Three-dimensional stereotactic surface projection (3D-SSP) technique was used to analyze data obtained from the 123I-IMP brain perfusion SPECT images compared with both CTAC-NDB and conventional NDB. We visually assessed each 3D-SSP z score map to determine the changes in specific findings, such as AD/DLB pattern. Furthermore, the stereotactic extraction estimation analysis software was used to measure the regional z score severity and extent as a semiquantitative assessment.

Results

In the visual assessment, all cases exhibited clearer findings with CTAC-NDB than with conventional NDB in the parietotemporal association cortex as well as in the inferior temporal, frontal, and lateral occipital cortices. Contrarily, the findings from the medial cerebral regions, including the precuneus and the posterior cingulate, became indistinct in 71% of the cases and remained unchanged in 25% of the cases. In the semiquantitative analysis, a similar tendency was observed in the mean z score in the three institutions included in the study.

Conclusion

Using the CTAC-NDB, the findings in the vicinity of the cranium became increasingly clear, whereas those in the medial surface of the brain became less defined or remained unchanged. These findings were confirmed via a semiquantitative analysis. Moreover, similar changes in the reduction pattern were observed in the three institutions. Therefore, the new database with CTAC might be applicable in other institutions. Data collected in this study may serve as a CTAC-NDB.
Literatur
1.
Zurück zum Zitat Jack CR Jr, Albert MS, Knopman DS, McKhann GM, Sperling RA, Carrillo MC, et al. Introduction to the recommendations from the National Institute on Aging—Alzheimer’s Association workgroups on diagnostic guidelines for Alzheimer’s disease. Alzheimers Dement. 2011;7:257–62.CrossRefPubMedPubMedCentral Jack CR Jr, Albert MS, Knopman DS, McKhann GM, Sperling RA, Carrillo MC, et al. Introduction to the recommendations from the National Institute on Aging—Alzheimer’s Association workgroups on diagnostic guidelines for Alzheimer’s disease. Alzheimers Dement. 2011;7:257–62.CrossRefPubMedPubMedCentral
2.
Zurück zum Zitat McKeith IG, Dickson DW, Lowe J, Emre M, O’Brien JT, Feldman H, et al. Diagnosis and management of dementia with Lewy bodies: third report of the DLB Consortium. Neurology. 2005;65:1863–72.CrossRefPubMed McKeith IG, Dickson DW, Lowe J, Emre M, O’Brien JT, Feldman H, et al. Diagnosis and management of dementia with Lewy bodies: third report of the DLB Consortium. Neurology. 2005;65:1863–72.CrossRefPubMed
3.
Zurück zum Zitat Morinaga A, Ono K, Ikeda T, Ikeda Y, Shima K, Noguchi-Shinohara M, et al. A comparison of the diagnostic sensitivity of MRI, CBF-SPECT, FDG-PET and cerebrospinal fluid biomarkers for detecting Alzheimer’s disease in a memory clinic. Dement Geriatr Cogn Disord. 2010;30:285–92.CrossRefPubMed Morinaga A, Ono K, Ikeda T, Ikeda Y, Shima K, Noguchi-Shinohara M, et al. A comparison of the diagnostic sensitivity of MRI, CBF-SPECT, FDG-PET and cerebrospinal fluid biomarkers for detecting Alzheimer’s disease in a memory clinic. Dement Geriatr Cogn Disord. 2010;30:285–92.CrossRefPubMed
4.
Zurück zum Zitat Jagust W, Thisted R, Devous MD Sr, Van Heertum R, Mayberg H, Jobst K, et al. SPECT perfusion imaging in the diagnosis of Alzheimer’s disease: a clinical-pathologic study. Neurology. 2001;56:950–6.CrossRefPubMed Jagust W, Thisted R, Devous MD Sr, Van Heertum R, Mayberg H, Jobst K, et al. SPECT perfusion imaging in the diagnosis of Alzheimer’s disease: a clinical-pathologic study. Neurology. 2001;56:950–6.CrossRefPubMed
5.
Zurück zum Zitat Minoshima S, Frey KA, Koeppe RA, Foster NL, Kuhl DE. A diagnostic approach in Alzheimer’s disease using three-dimensional stereotactic surface projections of fluorine-18-FDG PET. J Nucl Med. 1995;36:1238–48.PubMed Minoshima S, Frey KA, Koeppe RA, Foster NL, Kuhl DE. A diagnostic approach in Alzheimer’s disease using three-dimensional stereotactic surface projections of fluorine-18-FDG PET. J Nucl Med. 1995;36:1238–48.PubMed
6.
Zurück zum Zitat Friston KJ. Analyzing brain images: principles and overview. In: Frackowiak RSJ, Friston KJ, Frith CD, et al., editors. Human brain function. San Diego: Academic Press; 1997. p. 25–41. Friston KJ. Analyzing brain images: principles and overview. In: Frackowiak RSJ, Friston KJ, Frith CD, et al., editors. Human brain function. San Diego: Academic Press; 1997. p. 25–41.
7.
Zurück zum Zitat Chang LT. A method for attenuation correction in radionuclide computed tomography. IEEE Trans Nucl Sci. 1977;25:638–43.CrossRef Chang LT. A method for attenuation correction in radionuclide computed tomography. IEEE Trans Nucl Sci. 1977;25:638–43.CrossRef
8.
Zurück zum Zitat Ichihara T, Ogawa K, Motomura N, Kubo A, Hashimoto S. Compton scatter compensation using the triple-energy window method for single- and dual-isotope SPECT. J Nucl Med. 1993;34:2216–21.PubMed Ichihara T, Ogawa K, Motomura N, Kubo A, Hashimoto S. Compton scatter compensation using the triple-energy window method for single- and dual-isotope SPECT. J Nucl Med. 1993;34:2216–21.PubMed
9.
Zurück zum Zitat Hayashi M, Deguchi K, Utsunomiya K, Yamada M, Komori T, Takeuchi M, et al. Comparison of methods of attenuation and scatter correction in brain perfusion SPECT. J Nucl Med Technol. 2005;33:224–9.PubMed Hayashi M, Deguchi K, Utsunomiya K, Yamada M, Komori T, Takeuchi M, et al. Comparison of methods of attenuation and scatter correction in brain perfusion SPECT. J Nucl Med Technol. 2005;33:224–9.PubMed
10.
Zurück zum Zitat Inui Y, Ichihara T, Uno M, Ishiguro M, Ito K, Kato K, et al. CT-based attenuation correction and resolution compensation for I-123 IMP brain SPECT normal database: a multicenter phantom study. Ann Nucl Med. 2018;32:311–8.CrossRefPubMed Inui Y, Ichihara T, Uno M, Ishiguro M, Ito K, Kato K, et al. CT-based attenuation correction and resolution compensation for I-123 IMP brain SPECT normal database: a multicenter phantom study. Ann Nucl Med. 2018;32:311–8.CrossRefPubMed
11.
Zurück zum Zitat Matsuda H, Murata M, Mukai Y, Sako K, Ono H, Toyama H, et al. Japanese multicenter database of healthy controls for [123I]FP-CIT SPECT. Eur J Nucl Med Mol Imaging. 2018;45:1405–16.CrossRefPubMedPubMedCentral Matsuda H, Murata M, Mukai Y, Sako K, Ono H, Toyama H, et al. Japanese multicenter database of healthy controls for [123I]FP-CIT SPECT. Eur J Nucl Med Mol Imaging. 2018;45:1405–16.CrossRefPubMedPubMedCentral
12.
Zurück zum Zitat Ito K, Mori E, Fukuyama H, Ishii K, Washimi Y, Asada T, et al. Prediction of outcomes in MCI with (123)I-IMP-CBF SPECT: a multicenter prospective cohort study. Ann Nucl Med. 2013;27:898–906.CrossRefPubMedPubMedCentral Ito K, Mori E, Fukuyama H, Ishii K, Washimi Y, Asada T, et al. Prediction of outcomes in MCI with (123)I-IMP-CBF SPECT: a multicenter prospective cohort study. Ann Nucl Med. 2013;27:898–906.CrossRefPubMedPubMedCentral
13.
Zurück zum Zitat Mizumura S, Kumita S, Cho K, Ishihara M, Nakajo H, Toba M, et al. Development of quantitative analysis method for stereotactic brain image: assessment of reduced accumulation in extent and severity using anatomical segmentation. Ann Nucl Med. 2003;17:289–95.CrossRefPubMed Mizumura S, Kumita S, Cho K, Ishihara M, Nakajo H, Toba M, et al. Development of quantitative analysis method for stereotactic brain image: assessment of reduced accumulation in extent and severity using anatomical segmentation. Ann Nucl Med. 2003;17:289–95.CrossRefPubMed
14.
Zurück zum Zitat Morano GN, Seibyl JP. Technical overview of brain SPECT imaging: improving acquisition and processing of data. J Nucl Med Technol. 2003;31:191–5.PubMed Morano GN, Seibyl JP. Technical overview of brain SPECT imaging: improving acquisition and processing of data. J Nucl Med Technol. 2003;31:191–5.PubMed
15.
Zurück zum Zitat Ishii K, Hanaoka K, Okada M, Kumano S, Komeya Y, Tsuchiya N, et al. Impact of CT attenuation correction by SPECT/CT in brain perfusion images. Ann Nucl Med. 2012;26:241–7.CrossRefPubMed Ishii K, Hanaoka K, Okada M, Kumano S, Komeya Y, Tsuchiya N, et al. Impact of CT attenuation correction by SPECT/CT in brain perfusion images. Ann Nucl Med. 2012;26:241–7.CrossRefPubMed
16.
Zurück zum Zitat Minoshima S, Giordani B, Berent S, Frey KA, Foster NL, Kuhl DE. Metabolic reduction in the posterior cingulate cortex in very early Alzheimer’s disease. Ann Neurol. 1997;42:85–94.CrossRefPubMed Minoshima S, Giordani B, Berent S, Frey KA, Foster NL, Kuhl DE. Metabolic reduction in the posterior cingulate cortex in very early Alzheimer’s disease. Ann Neurol. 1997;42:85–94.CrossRefPubMed
17.
Zurück zum Zitat Gillen R, Firbank MJ, Lloyd J, O’Brien JT. CT-based attenuation and scatter correction compared with uniform attenuation correction in brain perfusion SPECT imaging for dementia. Phys Med Biol. 2015;60:6775–877.CrossRefPubMed Gillen R, Firbank MJ, Lloyd J, O’Brien JT. CT-based attenuation and scatter correction compared with uniform attenuation correction in brain perfusion SPECT imaging for dementia. Phys Med Biol. 2015;60:6775–877.CrossRefPubMed
18.
Zurück zum Zitat Lange C, Seese A, Schwarzenböck K, Steinhoff K, Umland-Seidler B, Krause BJ, et al. CT-based attenuation correction inI-123-ioflupane SPECT. PLoS ONE. 2014;9:e108328.CrossRefPubMedPubMedCentral Lange C, Seese A, Schwarzenböck K, Steinhoff K, Umland-Seidler B, Krause BJ, et al. CT-based attenuation correction inI-123-ioflupane SPECT. PLoS ONE. 2014;9:e108328.CrossRefPubMedPubMedCentral
19.
Zurück zum Zitat Farid K, Petras S, Poullias X, Caillat-Vigneron N. Clinical impact of nonuniform CT-based attenuation correction in brain perfusion SPECT/CT using (99m)Tc-ECD. Clin Nucl Med. 2014;39:343–5.CrossRef Farid K, Petras S, Poullias X, Caillat-Vigneron N. Clinical impact of nonuniform CT-based attenuation correction in brain perfusion SPECT/CT using (99m)Tc-ECD. Clin Nucl Med. 2014;39:343–5.CrossRef
20.
Zurück zum Zitat Akamatsu M, Yamashita Y, Akamatsu G, Tsutsui Y, Ohya N, Nakamura Y, et al. Influences of reconstruction and attenuation correction in brain SPECT images obtained by the hybrid SPECT/CT device: evaluation with a 3-dimensional brain phantom. Asia Ocean J Nucl Med Biol. 2014;2:24–9.PubMedPubMedCentral Akamatsu M, Yamashita Y, Akamatsu G, Tsutsui Y, Ohya N, Nakamura Y, et al. Influences of reconstruction and attenuation correction in brain SPECT images obtained by the hybrid SPECT/CT device: evaluation with a 3-dimensional brain phantom. Asia Ocean J Nucl Med Biol. 2014;2:24–9.PubMedPubMedCentral
Metadaten
Titel
Clinical utility of the normal database of 123I-iodoamphetamine brain perfusion single photon emission computed tomography for statistical analysis using computed tomography-based attenuation correction: a multicenter study
verfasst von
Takahiro Yamazaki
Yoshitaka Inui
Takashi Ichihara
Masaki Uno
Seiichiro Ota
Akihiro Toyoda
Masanobu Ishiguro
Takashi Kato
Kengo Ito
Hiroshi Toyama
Publikationsdatum
14.08.2019
Verlag
Springer Singapore
Erschienen in
Annals of Nuclear Medicine / Ausgabe 11/2019
Print ISSN: 0914-7187
Elektronische ISSN: 1864-6433
DOI
https://doi.org/10.1007/s12149-019-01395-0

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