Preserving Preclinical PET Quality During Intratherapeutic Imaging in Radionuclide Therapy with Rose Metal Shielding Reducing Photon Flux.
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- Record sourced from PubMed, PMID 30389819.
- Also identified by DOI 10.2967/jnumed.118.217117.
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Abstract
Performing PET imaging during ongoing radionuclide therapy can be a promising method to follow tumor response in vivo. However, the high therapeutic activity can interfere with the PET camera performance and degrade both image quality and quantitative capabilities. As a solution, low-energy photon emissions from the therapeutic radionuclide can be highly attenuated, still allowing sufficient detection of annihilation photons in coincidence. <b>Methods:</b> Hollow Rose metal cylinders with walls 2-4 mm thick were used to shield a <sup>22</sup>Na point source and a uniform phantom filled with <sup>18</sup>F as they were imaged on a preclinical PET camera with increasing activities of <sup>177</sup>Lu. A mouse with a subcutaneous tumor was injected with <sup>18</sup>F-FDG and imaged with an additional 120 MBq of <sup>177</sup>Lu and repeated with shields surrounding the animal. <b>Results:</b> The addition of <sup>177</sup>Lu to the volume imaged continuously degraded the image quality with increasing activity. The image quality was improved when shielding was introduced. The shields showed a high ability to produce stable and reproducible results for both spatial resolution and quantification of up to 120 MBq of <sup>177</sup>Lu activity (maximum activity tested). <b>Conclusion:</b> Without shielding, the activity quantification will be inaccurate for time points at which therapeutic activities are high. The suggested method shows that the shields reduce the noise induced by the <sup>177</sup>Lu and therefore enable longitudinal quantitative intratherapeutic imaging studies.
Medical subject headings
- Metals
- Photons
- Positron-Emission Tomography
- Radiation Protection