Annals of Nuclear Cardiology
Online ISSN : 2424-1741
Print ISSN : 2189-3926
ISSN-L : 2189-3926
Technical Point of View
Cardiac Time-of-flight PET for Evaluating Myocardial Perfusion with 13N-ammonia
Phantom Studies for Estimation of Defect and Heterogeneity
Shinro MatsuoTakafumi MochizukiSatoru TakedaTakayuki ShibutaniMasahisa OnoguchiKenichi NakajimaKoichi OkudaHirotoshi TakeuchiKazuya HayakawaSeigo Kinuya
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2016 年 2 巻 1 号 p. 73-78

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Background: Cardiac 13N-ammonia (13N-NH3) positron emission tomography (PET) is approved by Japanese Ministry of Health, Labour and Welfare for diagnosis of ischemic heart disease. New PET camera recently has three-dimensional mode acquisition and ordered subset expectation maximization (OSEM) reconstruction with time-of-flight (TOF) and point spread function (PSF) correction technology. The aim of the phantom study was to evaluate the usefulness of this novel technology using 13N-NH3 and 18F-fluorodeoxyglucose (18F-FDG).

Method: PET imaging was performed using a lung-heart torso phantom with myocardial perfusion defects. The indices of defect contrast, the coefficient of variation (CV) and the index of homogeneity were analyzed by using four reconstruction schemes, including OSEM, OSEM+TOF, OSEM+PSF, and TOF+PSF correction methods.

Results: The phantom study showed that TOF resulted in improvements of defect lesion detectability with low statistical noise. The defect contrast index of TOF+PSF was significantly larger than that of OSEM only (p=0.048). The cardiac percent root mean square uncertainty (RMSU) with PSF was 25.9% in OSEM+PSF and 20.9% in TOF+PSF. In contrast cardiac % RMSU without PSF correction was 14.8% in OSEM and 15.3% in TOF, which was lower than that with PSF correction. The average wall counts were homogeneous in four reconstruction methods in 13N-NH3. The value of % CV on the profile curve of 13N-NH3 images was confirmed to be smaller than 5% in all reconstruction methods.

Conclusions: The new PET technology with TOF and PSF correction may extend the possibility of precise analysis of abnormal perfusion defects, and clinical applications are expected.

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© The Japanese Society of Nuclear Cardiology 2017
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