• DocumentCode
    1156862
  • Title

    In-Beam and Off-Beam PET Measurements of Target Activation by Megavolt X-Ray Beams

  • Author

    Kunath, Daniela ; Kluge, Thomas ; Pawelke, Jörg ; Priegnitz, Marlen ; Enghardt, Wolfgang

  • Author_Institution
    Inst. of Radiat. Phys., Forschungszentrum Dresden-Rossendorf, Dresden
  • Volume
    56
  • Issue
    1
  • fYear
    2009
  • Firstpage
    57
  • Lastpage
    65
  • Abstract
    In-beam positron emission tomography (in-beam PET) is a valuable in situ method for quality assurance in radiation therapy. It is well investigated for therapy with carbon ions and has been successfully implemented clinically at the Gesellschaft for Schwerionenforschung (GSI), Darmstadt, Germany. The extension of this efficient technique to other radiation treatment modalities may be worthwhile. For protons, 3He, 7Li, and 16O the feasibility has already been experimentally shown. Furthermore, it seems to be feasible for the case of radiotherapy with high-energy photons, since positron emitters are generated by photons with energies above ~ 20 MeV due to (gamma,n) photo-nuclear reactions (predominantly 11C and 15O in tissue). In this regard, promising conclusions have been obtained by Geant4 simulations as well as by off-beam PET experiments using a conventional PET scanner. The next step was the installation of a small double head positron camera consisting of two bismuth germanate (BGO) block detectors at the irradiation site to measure the generated beta+ activity distribution simultaneously to the irradiation. The relation between deposited dose and beta+ activity density was quantified. The obtained results are presented and compared to that of off-beam PET experiments. Higher activities as well as an improved contrast between materials of different stoichiometry are achieved by measuring in-beam, showing the advantage of in-beam PET over off-beam PET. Thus, the application of in-beam PET to radiation therapy with high-energy photons can be useful for quality assurance, comprising monitoring of dose delivery, patient positioning and tumor response.
  • Keywords
    X-ray imaging; biomedical imaging; dosimetry; patient monitoring; photon-nucleus reactions; positron emission tomography; quality assurance; radiation monitoring; radiation therapy; scintillation counters; tumours; Geant4 simulations; activity distribution; bismuth germanate block detectors; carbon ions; conventional PET scanner; dose delivery; double head positron camera; high-energy photons; in-beam PET measurement; in-beam positron emission tomography; megavolt X-ray beams; off-beam PET measurement; patient positioning; photo-nuclear reactions; quality assurance; radiation therapy; radiation treatment; radiotherapy; since positron emitters; stoichiometry; Biomedical applications of radiation; Bismuth; Cameras; Carbon dioxide; Detectors; Helium; Medical treatment; Positron emission tomography; Protons; Quality assurance; Dose monitoring; high-energy photon therapy; positron emission tomography;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2008.2007422
  • Filename
    4782140