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Research ArticleBasic Science Investigation

Image Quality of Cardiac Silicon Photomultiplier PET/CT Using an Infant Phantom of Extremely Low Birth Weight

Kazuki Fukuchi, Takayuki Shibutani, Yusuke Terakawa, Yoshifumi Nouno, Emi Tateishi, Masahisa Onoguchi and Fukuda Tetsuya
Journal of Nuclear Medicine Technology June 2024, jnmt.124.267826; DOI: https://doi.org/10.2967/jnmt.124.267826
Kazuki Fukuchi
1Department of Medical Physics and Engineering, Course of Health Science, Osaka University Graduate School of Medicine, Osaka, Japan;
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Takayuki Shibutani
2Department of Quantum Medical Technology, Institute of Medical, Pharmaceutical, and Health Sciences, Kanazawa University, Kanazawa, Japan; and
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Yusuke Terakawa
3Department of Radiology, National Cerebral and Cardiovascular Center, Osaka, Japan
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Yoshifumi Nouno
3Department of Radiology, National Cerebral and Cardiovascular Center, Osaka, Japan
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Emi Tateishi
3Department of Radiology, National Cerebral and Cardiovascular Center, Osaka, Japan
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Masahisa Onoguchi
2Department of Quantum Medical Technology, Institute of Medical, Pharmaceutical, and Health Sciences, Kanazawa University, Kanazawa, Japan; and
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Fukuda Tetsuya
3Department of Radiology, National Cerebral and Cardiovascular Center, Osaka, Japan
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Abstract

The lack of pediatrics-specific equipment for nuclear medicine imaging has resulted in insufficient diagnostic information for newborns, especially low-birth-weight infants. Although PET offers high spatial resolution and low radiation exposure, its use in newborns is limited. This study investigated the feasibility of cardiac PET imaging using the latest silicon photomultiplier (SiPM) PET technology in infants of extremely low birth weight (ELBW) using a phantom model. Methods: The study used a phantom model representing a 500-g ELBW infant with brain, cardiac, liver, and lung tissues. The cardiac tissue included a 3-mm-thick defect mimicking myocardial infarction. Organ tracer concentrations were calculated assuming 18F-FDG myocardial viability scans and 18F-flurpiridaz myocardial perfusion scans and were added to the phantom organs. Imaging was performed using an SiPM PET/CT scanner with a 5-min acquisition. The data acquired in list mode were reconstructed using 3-dimensional ordered-subsets expectation maximization with varying iterations. Image evaluation was based on the depiction of the myocardial defect compared with normal myocardial accumulation. Results: Increasing the number of iterations improved the contrast of the myocardial defect for both tracers, with 18F-flurpiridaz showing higher contrast than 18F-FDG. However, even at 50 iterations, both tracers overestimated the defect accumulation. A bull’s-eye image can display the flow metabolism mismatch using images from both tracers. Conclusion: SiPM PET enabled cardiac PET imaging in a 500-g ELBW phantom with a 1-g heart. However, there were limitations in adequately depicting these defects. Considering the image quality and defect contrast,18F-flurpiridaz appears more desirable than 18F-FDG if only one of the two can be used.

  • SiPM PET
  • phantom
  • low-birth-weight infant
  • 18F-flurpiridaz
  • 18F-FDG

Footnotes

  • Published online Jun. 20, 2024.

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Journal of Nuclear Medicine Technology: 53 (1)
Journal of Nuclear Medicine Technology
Vol. 53, Issue 1
March 1, 2025
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Image Quality of Cardiac Silicon Photomultiplier PET/CT Using an Infant Phantom of Extremely Low Birth Weight
Kazuki Fukuchi, Takayuki Shibutani, Yusuke Terakawa, Yoshifumi Nouno, Emi Tateishi, Masahisa Onoguchi, Fukuda Tetsuya
Journal of Nuclear Medicine Technology Jun 2024, jnmt.124.267826; DOI: 10.2967/jnmt.124.267826

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Image Quality of Cardiac Silicon Photomultiplier PET/CT Using an Infant Phantom of Extremely Low Birth Weight
Kazuki Fukuchi, Takayuki Shibutani, Yusuke Terakawa, Yoshifumi Nouno, Emi Tateishi, Masahisa Onoguchi, Fukuda Tetsuya
Journal of Nuclear Medicine Technology Jun 2024, jnmt.124.267826; DOI: 10.2967/jnmt.124.267826
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Keywords

  • SiPM PET
  • phantom
  • low-birth-weight infant
  • 18F-flurpiridaz
  • 18F-FDG
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