Key result
Myocardial perfusion imaging using an ultrafast CZT camera achieved excellent uptake correlation (r=0.81 for low dose, r=0.80 for high dose; P<0.001) and clinical agreement with standard SPECT.
Why the study?
Does a CZT solid-state detector camera provide comparable myocardial perfusion imaging quality with reduced scan times compared to standard SPECT?
Cross-Sectional (n=20)
Does a CZT solid-state detector camera provide comparable myocardial perfusion imaging quality with reduced scan times compared to standard SPECT?
Effect estimate: r = 0.81 (low dose) and r = 0.80 (high dose)
p-value: p=<0.001
A CZT solid-state detector camera allows for significantly reduced scan times (2-3 minutes) for myocardial perfusion imaging while maintaining excellent agreement with standard 15-minute SPECT.
CZT may enable shorter MPI scans; leaves open need for outcome trials versus standard SPECT.
UNLABELLED: We aimed at establishing the optimal scan time for nuclear myocardial perfusion imaging (MPI) on an ultrafast cardiac gamma-camera using a novel cadmium-zinc-telluride (CZT) solid-state detector technology. METHODS: Twenty patients (17 male; BMI range, 21.7-35.5 kg/m(2)) underwent 1-d (99m)Tc-tetrofosmin adenosine stress and rest MPI protocols, each with a 15-min acquisition on a standard dual-detector SPECT camera. All scans were immediately repeated on an ultrafast CZT camera over a 6-min acquisition time and reconstructed from list-mode raw data to obtain scan durations of 1 min, 2 min, etc., up to a maximum of 6 min. For each of the scan durations, the segmental tracer uptake value (percentage of maximum myocardial uptake) from the CZT camera was compared by intraclass correlation with standard SPECT camera data using a 20-segment model, and clinical agreement was assessed per coronary territory. Scan durations above which no further relevant improvement in uptake correlation was found were defined as minimal required scan times, for which Bland-Altman limits of agreement were calculated. RESULTS: Minimal required scan times were 3 min for low dose (r = 0.81; P < 0.001; Bland-Altman, -11.4% to 12.2%) and 2 min for high dose (r = 0.80; P < 0.001; Bland-Altman, -7.6% to 12.9%), yielding a clinical agreement of 95% and 97%, respectively. CONCLUSION: We have established the minimal scan time for a CZT solid-state detector system, which allows 1-d stress/rest MPI with a substantially reduced acquisition time resulting in excellent agreement with regard to uptake and clinical findings, compared with MPI from a standard dual-head SPECT gamma-camera.
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Herzog et al. (2009) conducted a cross-sectional in Patients undergoing myocardial perfusion imaging (n=20). Ultrafast cadmium-zinc-telluride (CZT) solid-state detector camera vs. Standard dual-detector SPECT camera was evaluated on Segmental tracer uptake value correlation and clinical agreement per coronary territory (r = 0.81 (low dose) and r = 0.80 (high dose), p=<0.001). Myocardial perfusion imaging using an ultrafast CZT camera achieved excellent uptake correlation (r=0.81 for low dose, r=0.80 for high dose; P<0.001) and clinical agreement with standard SPECT.
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