Scatter Correction with Combined Single-Scatter Simulation and Monte Carlo Simulation Scaling Improved the Visual Artifacts and Quantification in 3-Dimensional Brain PET/CT Imaging with <sup>15</sup>O-Gas Inhalation.
basic_science · Level V
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- Record sourced from PubMed, PMID 28646012.
- Also identified by DOI 10.2967/jnumed.117.193060.
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Abstract
In 3-dimensional PET/CT imaging of the brain with <sup>15</sup>O-gas inhalation, high radioactivity in the face mask creates cold artifacts and affects the quantitative accuracy when scatter is corrected by conventional methods (e.g., single-scatter simulation [SSS] with tail-fitting scaling [TFS-SSS]). Here we examined the validity of a newly developed scatter-correction method that combines SSS with a scaling factor calculated by Monte Carlo simulation (MCS-SSS). <b>Methods:</b> We performed phantom experiments and patient studies. In the phantom experiments, a plastic bottle simulating a face mask was attached to a cylindric phantom simulating the brain. The cylindric phantom was filled with <sup>18</sup>F-FDG solution (3.8-7.0 kBq/mL). The bottle was filled with nonradioactive air or various levels of <sup>18</sup>F-FDG (0-170 kBq/mL). Images were corrected either by TFS-SSS or MCS-SSS using the CT data of the bottle filled with nonradioactive air. We compared the image activity concentration in the cylindric phantom with the true activity concentration. We also performed <sup>15</sup>O-gas brain PET based on the steady-state method on patients with cerebrovascular disease to obtain quantitative images of cerebral blood flow and oxygen metabolism. <b>Results:</b> In the phantom experiments, a cold artifact was observed immediately next to the bottle on TFS-SSS images, where the image activity concentrations in the cylindric phantom were underestimated by 18%, 36%, and 70% at the bottle radioactivity levels of 2.4, 5.1, and 9.7 kBq/mL, respectively. At higher bottle radioactivity, the image activity concentrations in the cylindric phantom were greater than 98% underestimated. For the MCS-SSS, in contrast, the error was within 5% at each bottle radioactivity level, although the image generated slight high-activity artifacts around the bottle when the bottle contained significantly high radioactivity. In the patient imaging with <sup>15</sup>O<sub>2</sub> and C<sup>15</sup>O<sub>2</sub> inhalation, cold artifacts were observed on TFS-SSS images, whereas no artifacts were observed on any of the MCS-SSS images. <b>Conclusion:</b> MCS-SSS accurately corrected the scatters in <sup>15</sup>O-gas brain PET when the 3-dimensional acquisition mode was used, preventing the generation of cold artifacts, which were observed immediately next to a face mask on TFS-SSS images. The MCS-SSS method will contribute to accurate quantitative assessments.
Medical subject headings
- Algorithms
- Artifacts
- Brain
- Brain/diagnostic imaging
- Computer Simulation
- Fluorodeoxyglucose F18
- Humans
- Image Processing, Computer-Assisted
- Imaging, Three-Dimensional
- Imaging, Three-Dimensional/methods
- Monte Carlo Method
- Oxygen Radioisotopes
- Phantoms, Imaging
- Positron Emission Tomography Computed Tomography
- Positron Emission Tomography Computed Tomography/methods
- Radiopharmaceuticals
- Reproducibility of Results
- Scattering, Radiation