Literature DB >> 12667310

Application of MINERVA Monte Carlo simulations to targeted radionuclide therapy.

Marie-Anne Descalle1, Christine L Hartmann Siantar, Lucile Dauffy, David W Nigg, Charles A Wemple, Aina Yuan, Gerald L DeNardo.   

Abstract

Recent clinical results have demonstrated the promise of targeted radionuclide therapy for advanced cancer. As the success of this emerging form of radiation therapy grows, accurate treatment planning and radiation dose simulations are likely to become increasingly important. To address this need, we have initiated the development of a new, Monte Carlo transport-based treatment planning system for molecular targeted radiation therapy as part of the MINERVA system. The goal of the MINERVA dose calculation system is to provide 3-D Monte Carlo simulation-based dosimetry for radiation therapy, focusing on experimental and emerging applications. For molecular targeted radionuclide therapy applications, MINERVA calculates patient-specific radiation dose estimates using computed tomography to describe the patient anatomy, combined with a user-defined 3-D radiation source. This paper describes the validation of the 3-D Monte Carlo transport methods to be used in MINERVA for molecular targeted radionuclide dosimetry. It reports comparisons of MINERVA dose simulations with published absorbed fraction data for distributed, monoenergetic photon and electron sources, and for radioisotope photon emission. MINERVA simulations are generally within 2% of EGS4 results and 10% of MCNP results, but differ by up to 40% from the recommendations given in MIRD Pamphlets 3 and 8 for identical medium composition and density. For several representative source and target organs in the abdomen and thorax, specific absorbed fractions calculated with the MINERVA system are generally within 5% of those published in the revised MIRD Pamphlet 5 for 100 keV photons. However, results differ by up to 23% for the adrenal glands, the smallest of our target organs. Finally, we show examples of Monte Carlo simulations in a patient-like geometry for a source of uniform activity located in the kidney.

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Year:  2003        PMID: 12667310     DOI: 10.1089/108497803321269340

Source DB:  PubMed          Journal:  Cancer Biother Radiopharm        ISSN: 1084-9785            Impact factor:   3.099


  4 in total

1.  Method for Fast CT/SPECT-Based 3D Monte Carlo Absorbed Dose Computations in Internal Emitter Therapy.

Authors:  S J Wilderman; Y K Dewaraja
Journal:  IEEE Trans Nucl Sci       Date:  2007-02-17       Impact factor: 1.679

2.  Lung dosimetry for radioiodine treatment planning in the case of diffuse lung metastases.

Authors:  Hong Song; Bin He; Andrew Prideaux; Yong Du; Eric Frey; Wayne Kasecamp; Paul W Ladenson; Richard L Wahl; George Sgouros
Journal:  J Nucl Med       Date:  2006-12       Impact factor: 10.057

Review 3.  Three-dimensional imaging-based radiobiological dosimetry.

Authors:  George Sgouros; Eric Frey; Richard Wahl; Bin He; Andrew Prideaux; Robert Hobbs
Journal:  Semin Nucl Med       Date:  2008-09       Impact factor: 4.446

4.  Quantification of internal dosimetry in PET patients: individualized Monte Carlo vs generic phantom-based calculations.

Authors:  Sara Neira; Jacobo Guiu-Souto; Pablo Díaz-Botana; Paulino Pais; Carlos Fernández; Virginia Pubul; Álvaro Ruibal; Cristian Candela-Juan; Araceli Gago-Arias; Miguel Pombar; Juan Pardo-Montero
Journal:  Med Phys       Date:  2020-07-14       Impact factor: 4.071

  4 in total

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