Literature DB >> 11008951

Monte Carlo simulation of dose distributions from a synchrotron-produced microplanar beam array using the EGS4 code system.

I Orion1, A B Rosenfeld, F A Dilmanian, F Telang, B Ren, Y Namito.   

Abstract

Microbeam therapy is established as a general concept for brain tumour treatment. A synchrotron based x-ray source was chosen for experimental research into microbeam therapy, and therefore new simulations were essential for investigating the therapy parameters with a proper description of the synchrotron radiation characteristics. To design therapy parameters for tumour treatments, the newly upgraded LSCAT (Low energy SCATtering) package of the EGS4 Monte Carlo simulation code was adapted to develop an accurate self-written user code for calculating microbeam radiation dose profiles with a precision of 1 microm. LSCAT is highly suited to this purpose due to its ability to simulate low-energy x-ray transport with detailed photon interactions (including bound electron incoherent scattering functions, and linear polarized coherent scattering). The properties of the synchrotron x-ray microbeam, including its polarization, source spectrum and beam penumbra, were simulated by the new user codes. Two concentric spheres, an inner sphere, defined as a brain, and a surrounding sphere, defined as a skull, represented the phantom. The microbeam simulation was tested using a 3 x 3 cm array beam for small treatment areas and a 6 x 6 cm array for larger ones, with different therapy parameters, such as beam width and spacing. The results showed that the microbeam array retained an adequate peak-to-valley ratio, of five times at least, at tissue depths suitable for radiation therapy. Dose measurements taken at 1 microm resolution with an 'edge-on' MOSFET validated the basics of the user code for microplanar radiation therapy.

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Year:  2000        PMID: 11008951     DOI: 10.1088/0031-9155/45/9/304

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  6 in total

1.  X-ray microbeams: Tumor therapy and central nervous system research.

Authors:  F A Dilmanian; Y Qu; S Liu; C D Cool; J Gilbert; J F Hainfeld; C A Kruse; J Laterra; D Lenihan; M M Nawrocky; G Pappas; C-I Sze; T Yuasa; N Zhong; Z Zhong; J W McDonald
Journal:  Nucl Instrum Methods Phys Res A       Date:  2005-08-11       Impact factor: 1.455

2.  Interlaced x-ray microplanar beams: a radiosurgery approach with clinical potential.

Authors:  F Avraham Dilmanian; Zhong Zhong; Tigran Bacarian; Helene Benveniste; Pantaleo Romanelli; Ruiliang Wang; Jeremy Welwart; Tetsuya Yuasa; Eliot M Rosen; David J Anschel
Journal:  Proc Natl Acad Sci U S A       Date:  2006-06-07       Impact factor: 11.205

Review 3.  Microbeam radiation therapy - grid therapy and beyond: a clinical perspective.

Authors:  Elisabeth Schültke; Jacques Balosso; Thomas Breslin; Guido Cavaletti; Valentin Djonov; Francois Esteve; Michael Grotzer; Guido Hildebrandt; Alexander Valdman; Jean Laissue
Journal:  Br J Radiol       Date:  2017-07-27       Impact factor: 3.039

4.  Hybrid dose calculation: a dose calculation algorithm for microbeam radiation therapy.

Authors:  Mattia Donzelli; Elke Bräuer-Krisch; Uwe Oelfke; Jan J Wilkens; Stefan Bartzsch
Journal:  Phys Med Biol       Date:  2018-02-13       Impact factor: 3.609

5.  Investigating the Dosimetric Characteristics of Microbeam Radiation Treatment.

Authors:  Mansour Zabihzadeh; Atefeh Rabiei; Hojattollah Shahbazian; Sasan Razmjoo
Journal:  J Med Signals Sens       Date:  2021-01-30

6.  A high-resolution dose calculation engine for X-ray microbeams radiation therapy.

Authors:  Sarvenaz Keshmiri; Sylvan Brocard; Raphaël Serduc; Jean-François Adam
Journal:  Med Phys       Date:  2022-04-12       Impact factor: 4.506

  6 in total

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