| Literature DB >> 29322344 |
Carlos F Uribe1,2, Pedro L Esquinas3, Marjorie Gonzalez4, Wei Zhao3, Jesse Tanguay3, Anna Celler3.
Abstract
BACKGROUND: The aim of this study was to investigate the deadtime (DT) effects that are present in 177Lu images acquired after radionuclide therapy injection, assess differences in DT based on the full spectrum and the photopeak-only measurements, and design a method to correct for the deadtime losses. A Siemens SymbiaT SPECT/CT camera with a medium energy collimator was used. A 295-mL bottle was placed off-center inside a large cylinder filled with water, and 177Lu activity was sequentially added up to a maximum of 9.12 GBq. The true count rates vs. observed count rates were plotted and fitted to the DT paralyzable model. This analysis was performed using counts recorded in the full spectrum and in other energy windows. The DT correction factors were calculated using the percentage difference between the true and the observed count rates.Entities:
Keywords: 177Lu; Deadtime; Quantification; SPECT/CT
Year: 2018 PMID: 29322344 PMCID: PMC5762619 DOI: 10.1186/s40658-017-0202-7
Source DB: PubMed Journal: EJNMMI Phys ISSN: 2197-7364
Energy window limits for the two photopeaks of 177Lu. Additional energy windows were used to collect data for the entire spectrum
| Window name | Lower limit [keV] | Center [keV] | Upper limit [keV] |
|---|---|---|---|
| LSW113 | 88.4 | 95.0 | 101.7 |
| PW113 | 101.7 | 113.0 | 124.3 |
| USW113 | 125.0 | 139.0 | 152.9 |
| LSW208 | 153.0 | 170.0 | 187.0 |
| PW208 | 187.2 | 208.0 | 228.8 |
| USW208 | 229.5 | 255.0 | 280.5 |
Fig. 1Coronal view of the positioning of the phantom and the bottle inside it with respect to the two detectors
Fig. 2Flow charts of the three methods used to calculate the camera deadtime
Fig. 3Measured spectra recorded at different count rates for both detectors. The count rates listed in the legend of the plots correspond to the total full spectrum count rates
Fig. 4Observed count rates vs. true count rates for the full spectrum. The values of τp determined for both detectors are shown. Crosses indicate the measured data points. Typical values of full spectrum count rates in patient studies (indicated by an arrow) range from 50 to 70 kcps (~ 0.6 × 105 cps on this graph)
Fig. 5Observed count rates as a function of true count rates for the 113-keV photopeak (a) and its scatter windows (b, c). The TEW scatter corrected behavior for this photopeak is shown in (d)
Fig. 6Observed count rates as a function of true count rates for the 208-keV photopeak (a) and its scatter windows (b, c). The TEW scatter corrected behavior for this photopeak is shown in (d)
Fig. 7Deadtime correction factors as a function of the observed count rate. For figures a, b, and c, the observed count rates are those which were recorded in the energy window corresponding to the presented curve (see legend). d DTCF corresponding to PP. Typical values of full spectrum count rates in patient studies (indicated by an arrow) range from 50 to 70 kcps (~ 0.6 × 105 cps on this graph)
Window fractions (in percentage) for the two photopeaks and detectors
| Detector 1 | Detector 2 | |
|---|---|---|
| LSW113 [%] | 8.73 ± 0.10 | 8.06 ± 0.10 |
| PW113 [%] | 16.41 ± 0.18 | 19.24 ± 0.26 |
| USW113 [%] | 8.29 ± 0.22 | 8.13 ± 0.49 |
| LSW208 [%] | 8.43 ± 0.09 | 6.77 ± 0.41 |
| PW208 [%] | 12.18 ± 0.24 | 13.89 ± 0.15 |
| USW208 [%] | 0.69 ± 0.15 | 1.32 ± 0.51 |
Values for τw obtained with Eq. 5 using values of η available in the literature. Window fractions obtained from detector 2 were used as it covered a larger range of count rates
| True | ||||
|---|---|---|---|---|
| 1.0 | 1.9 | 6.04 ± 0.23 | 2.1 | |
| 1.4 | 3.0 | 4.79 ± 0.18 | 1.6 |
The last two columns show the value of η which would be required to correctly predict the DT value determined in our experiments