Literature DB >> 8635948

Monte Carlo-based treatment planning for boron neutron capture therapy using custom designed models automatically generated from CT data.

R Zamenhof1, E Redmond, G Solares, D Katz, K Riley, S Kiger, O Harling.   

Abstract

PURPOSE: A Monte Carlo-based treatment planning code for boron neutron capture therapy (BNCT), called NCTPLAN, has been developed in support of the New England Medical Center-Massachusetts Institute of Technology program in BNCT. This code has been used to plan BNCT irradiations in an ongoing peripheral melanoma BNCT protocol. The concept and design of the code is described and illustrative applications are presented. METHODS AND MATERIALS: NCTPLAN uses thin-slice Computed Tomography (CT) image data to automatically create a heterogeneous multimaterial model of the relevant body part, which is then used as input to a Monte Carlo simulation code, MCNP, to derive distributions within the model. Results are displayed as isocontours superimposed on precisely corresponding CT images of the body part. Currently the computational slowness of the dose calculations precludes efficient treatment planning per se, but does provide the radiation oncologist with a preview of the doses that will be delivered to tumors and to various normal tissues, and permits neutron irradiation times in Megawatt-minutes (MW-min) to be calculated for specific dose prescriptions. The validation of the NCTPLAN results by experimental mixed-field dosimetry is presented. A typical application involving a cranial parallel-opposed epithermal neutron beam irradiation of a human subject with a glioblastoma multiforme is illustrated showing relative biological effectiveness-isodose (RBE) distributions in normal CNS structures and in brain tumors. Parametric curves for the MITR-II M67 epithermal neutron beam, showing the gain factors (gain factor = minimum tumor dose/maximum normal brain dose) for various combinations of boron concentrations in tumor and in normal brain, are presented.
RESULTS: The NCTPLAN code provides good computational agreement with experimental measurements for all dose components along the neutron beam central axis in a head phantom. For the M67 epithermal beam the gain factor for 1, boronophenylalanine for a small midline brain tumor under typical distribution assumptions is 1.4-1.8 x . Implementation of the code under clinical conditions is demonstrated.
CONCLUSION: The NCTPLAN code has been shown to be well suited to treatment-planning applications in BNCT. Comparison of computationally derived dose distributions in a phantom compared with experimental measurements demonstrates good agreement. Automatic superposition of isodose contours with corresponding CT image data provides the ability to evaluate BNCT doses to tumor and to normal structures. Calculation of gain factors suggests that for the M67 epithermal neutron beam, more advantage is gained from increasing boron concentrations in tumor than from increasing the boron tumor-to-normal brain ratio.

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Year:  1996        PMID: 8635948     DOI: 10.1016/0360-3016(96)00084-3

Source DB:  PubMed          Journal:  Int J Radiat Oncol Biol Phys        ISSN: 0360-3016            Impact factor:   7.038


  8 in total

Review 1.  Common challenges and problems in clinical trials of boron neutron capture therapy of brain tumors.

Authors:  N Gupta; R A Gahbauer; T E Blue; B Albertson
Journal:  J Neurooncol       Date:  2003 Mar-Apr       Impact factor: 4.130

Review 2.  Computational dosimetry and treatment planning considerations for neutron capture therapy.

Authors:  David W Nigg
Journal:  J Neurooncol       Date:  2003 Mar-Apr       Impact factor: 4.130

3.  A critical examination of the results from the Harvard-MIT NCT program phase I clinical trial of neutron capture therapy for intracranial disease.

Authors:  Paul M Busse; Otto K Harling; Matthew R Palmer; W S Kiger; Jody Kaplan; Irving Kaplan; Cynthia F Chuang; J Tim Goorley; Kent J Riley; Thomas H Newton; Gustavo A Santa Cruz; Xing-Qi Lu; Robert G Zamenhof
Journal:  J Neurooncol       Date:  2003 Mar-Apr       Impact factor: 4.130

4.  Effects of Hounsfield number conversion on CT based proton Monte Carlo dose calculations.

Authors:  Hongyu Jiang; Joao Seco; Harald Paganetti
Journal:  Med Phys       Date:  2007-04       Impact factor: 4.071

Review 5.  Current status of boron neutron capture therapy of high grade gliomas and recurrent head and neck cancer.

Authors:  Rolf F Barth; M Graca H Vicente; Otto K Harling; W S Kiger; Kent J Riley; Peter J Binns; Franz M Wagner; Minoru Suzuki; Teruhito Aihara; Itsuro Kato; Shinji Kawabata
Journal:  Radiat Oncol       Date:  2012-08-29       Impact factor: 3.481

6.  A fast Monte Carlo code for proton transport in radiation therapy based on MCNPX.

Authors:  Keyvan Jabbari; Jan Seuntjens
Journal:  J Med Phys       Date:  2014-07

7.  Development of an integrated Monte Carlo model for glioblastoma multiforme treated with boron neutron capture therapy.

Authors:  Leyla Moghaddasi; Eva Bezak
Journal:  Sci Rep       Date:  2017-08-01       Impact factor: 4.379

8.  Evaluation of a treatment planning system developed for clinical boron neutron capture therapy and validation against an independent Monte Carlo dose calculation system.

Authors:  Naonori Hu; Hiroki Tanaka; Ryo Kakino; Syuushi Yoshikawa; Mamoru Miyao; Kazuhiko Akita; Kayako Isohashi; Teruhito Aihara; Keiji Nihei; Koji Ono
Journal:  Radiat Oncol       Date:  2021-12-24       Impact factor: 3.481

  8 in total

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