• DocumentCode
    49275
  • Title

    Study-Parameter Impact in Quantitative 90-Yttrium PET Imaging for Radioembolization Treatment Monitoring and Dosimetry

  • Author

    Goedicke, A. ; Berker, Yannick ; Verburg, F.A. ; Behrendt, F.F. ; Winz, O. ; Mottaghy, F.M.

  • Author_Institution
    Univ. Hosp., Dept. of Nucl. Med., RWTH Aachen Univ., Aachen, Germany
  • Volume
    32
  • Issue
    3
  • fYear
    2013
  • fDate
    Mar-13
  • Firstpage
    485
  • Lastpage
    492
  • Abstract
    A small positron-generating branch in 90-Yttrium (90Y) decay enables post-therapy dose assessment in liver cancer radioembolization treatment. The aim of this study was to validate clinical 90Y positron emission tomography (PET) quantification, focusing on scanner linearity as well as acquisition and reconstruction parameter impact on scanner calibration. Data from three dedicated phantom studies (activity range: 55.2 MBq-2.1 GBq) carried out on a Philips Gemini TF 16 PET/CT scanner were analyzed after reconstruction with up to 361 parameter configurations. For activities above 200 MBq, scanner linearity could be confirmed with relative error margins <;4%. An acquisition-time-normalized calibration factor of 1.04 MBq·s/CNTS was determined for the employed scanner. Stable activity convergence was found in hot phantom regions with relative differences in summed image intensities between -3.6% and +2.4%. Absolute differences in background noise artifacts between - 79.9% and + 350% were observed. Quantitative accuracy was dominated by subset size selection in the reconstruction. Using adequate segmentation and optimized acquisition parameters, the average activity recovery error induced by the axial scanner sensitivity profile was reduced to +2.4%±3.4% (mean ± standard deviation). We conclude that post-therapy dose assessment in 90Y PET can be improved using adapted parameter setups.
  • Keywords
    calibration; cancer; dosimetry; image reconstruction; image segmentation; liver; medical image processing; patient monitoring; phantoms; positron emission tomography; radiation therapy; yttrium; 90-yttrium decay enables post-therapy dose assessment; Philips Gemini TF 16 PET-CT scanner; acquisition-time-normalized calibration factor; axial scanner sensitivity profile; dedicated phantom studies; dosimetry; hot phantom regions; image acquisition; image intensity; image reconstruction; image segmentation; liver cancer radioembolization treatment monitoring; noise artifacts; optimized acquisition parameters; positron emission tomography; positron-generating branch; quantitative 90-yttrium PET imaging; scanner calibration; scanner linearity; subset size selection; Calibration; Computed tomography; Image reconstruction; Isotopes; Phantoms; Positron emission tomography; Standards; $^{90}{rm Y}$ positron emission tomography (PET); Scanner calibration; selective internal radiotherapy (SIRT); transarterial radioembolization (TARE); Calibration; Embolization, Therapeutic; Humans; Models, Biological; Phantoms, Imaging; Positron-Emission Tomography; Radiometry; Reproducibility of Results; Thorax; Yttrium Radioisotopes;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2012.2221135
  • Filename
    6317190