• DocumentCode
    1532403
  • Title

    The Use of Computational Patient Models to Assess the Risk of Developing Radiation-Induced Cancers From Radiation Therapy of the Primary Cancer

  • Author

    Paganetti, Harald

  • Author_Institution
    Dept. of Radiat. Oncology, Massachusetts Gen. Hosp., Boston, MA, USA
  • Volume
    97
  • Issue
    12
  • fYear
    2009
  • Firstpage
    1977
  • Lastpage
    1987
  • Abstract
    Even with highly conformal treatment delivery techniques for radiation therapy, one cannot avoid the irradiation of healthy tissues surrounding the tumor. In treatment planning, absorbed dose constraints are defined for organs at risk visible in the patient´s computed tomography scan in order to minimize side effects. However, scattered or secondary absorbed dose is also deposited in areas outside of the imaged volume. Although these doses are typically quite low (well below 1% of the therapeutic dose), there is the potential risk for patients to develop a radiation-induced second malignancy later in life. For a systematic analysis of scattered or secondary doses and their carcinogenic effects, accurate patient-specific organ dosimetry is necessary. Computational patient models are needed because low absorbed doses to organs away from the primarily irradiated target area cannot be measured easily. Monte Carlo simulations can incorporate the geometry and tissue properties of computational phantoms to simulate dose deposition events weighted with radiation weighting factors. Epidemiological models can then be applied to relate organ equivalent absorbed doses to cancer risks. This paper describes the use of computational phantoms in conjunction with Monte Carlo dose calculations and epidemiological risk models. We demonstrate how these simulations are applied with the purpose of estimating second cancer risks in radiation therapy and of improving existing epidemiological risk models.
  • Keywords
    Monte Carlo methods; biological effects of ionising radiation; cancer; computerised tomography; phantoms; radiation therapy; risk management; tumours; Monte Carlo dose calculation; cancer risk assessment; carcinogenic effects; computational patient model; computational phantoms; computed tomography scan; conformal treatment delivery techniques; dose constraints; dose deposition; epidemiological risk models; healthy tissues; patient-specific organ dosimetry; primary cancer; radiation therapy; radiation weighting factors; radiation-induced cancers; radiation-induced second malignancy; scattered dose; secondary absorbed dose; therapeutic dose; treatment planning; tumor; Area measurement; Biomedical applications of radiation; Cancer; Computational modeling; Computed tomography; Dosimetry; Imaging phantoms; Medical treatment; Neoplasms; Scattering; Cancer; Monte Carlo methods; radiation effects;
  • fLanguage
    English
  • Journal_Title
    Proceedings of the IEEE
  • Publisher
    ieee
  • ISSN
    0018-9219
  • Type

    jour

  • DOI
    10.1109/JPROC.2009.2023809
  • Filename
    5306113