Quantitative Comparison of SPECT and PET Performance for Clinical Theranostic Applications.
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Where this comes from
- Record sourced from PubMed, PMID 41469152.
- Also identified by DOI 10.2967/jnumed.125.270987 and PMC identifier 12955544.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Radiopharmaceutical therapy is an emerging approach to treat metastatic disease, with the potential to enable personalized care through imaging. With the growing interest in quantitative imaging, there remains a need for systematic assessment of imageable radionuclides and scanner performance under comparable conditions. This motivated us to quantitatively and qualitatively compare SPECT and PET performance using standardized evaluation procedures to assess their effectiveness in imaging applications for targeted radiotherapy. <b>Methods:</b> The National Electrical Manufacturers Association International Electrotechnical Commission body phantom was used to assess recovery coefficients, contrast, and image quality, including spatial resolution and noise. SPECT performance was evaluated using <sup>99m</sup>Tc (a low-energy γ-ray-emitting isotope), <sup>203</sup>Pb (a surrogate for the therapeutic α-particle-emitting <sup>212</sup>Pb), and theranostic <sup>177</sup>Lu. PET performance was tested using <sup>18</sup>F, <sup>89</sup>Zr, and <sup>64</sup>Cu as imaging surrogates. <b>Results</b>: PET demonstrated superior spatial resolution and accurate activity recovery compared with SPECT, which was limited by lower sensitivity, photon scatter, and collimator design constraints. Among PET isotopes, <sup>18</sup>F showed consistently high quantitative accuracy, whereas <sup>89</sup>Zr and <sup>64</sup>Cu performed similarly, with only minor reductions in performance metrics. For SPECT, <sup>99m</sup>Tc outperformed <sup>203</sup>Pb and <sup>177</sup>Lu in both lesion detectability and activity recovery. <sup>203</sup>Pb and <sup>177</sup>Lu showed poor quantitative accuracy; however, increasing iterations in reconstruction improved results. <b>Conclusion:</b> These findings underscore the importance of selecting appropriate imaging modalities, isotopes, and reconstruction parameters for theranostic applications. Limitations in quantitative accuracy must be addressed and acknowledged in the search for precise and effective treatment strategies. This study also demonstrates that <sup>203</sup>Pb may serve as a suitable diagnostic partner to <sup>212</sup>Pb and validates the use of these quantitative methodologies for the evaluation of PET and SPECT imaging tasks.
Medical subject headings
- Precision Medicine
- Radiopharmaceuticals
- Neoplasms
- Tomography, Emission-Computed, Single-Photon
- Positron-Emission Tomography