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1.
Phys Med Biol ; 59(21): 6659, 2014 Nov 07.
Artigo em Inglês | MEDLINE | ID: mdl-25325249

RESUMO

HDR BrachyView is a novel in-body dosimetric imaging system for real-time monitoring and verification of the source position in high dose rate (HDR) prostate brachytherapy treatment. It is based on a high-resolution pixelated detector array with a semi-cylindrical multi-pinhole tungsten collimator and is designed to fit inside a compact rectal probe, and is able to resolve the 3D position of the source with a maximum error of 1.5 mm. This paper presents an evaluation of the additional dose that will be delivered to the patient as a result of backscatter radiation from the collimator. Monte Carlo simulations of planar and cylindrical collimators embedded in a tissue-equivalent phantom were performed using Geant4, with an (192)Ir source placed at two different source-collimator distances. The planar configuration was replicated experimentally to validate the simulations, with a MOSkin dosimetry probe used to measure dose at three distances from the collimator. For the cylindrical collimator simulation, backscatter dose enhancement was calculated as a function of axial and azimuthal displacement, and dose distribution maps were generated at three distances from the collimator surface. Although significant backscatter dose enhancement was observed for both geometries immediately adjacent to the collimator, simulations and experiments indicate that backscatter dose is negligible at distances beyond 1 mm from the collimator. Since HDR BrachyView is enclosed within a 1 mm thick tissue-equivalent plastic shell, all backscatter radiation resulting from its use will therefore be absorbed before reaching the rectal wall or other tissues. dosimetry, brachytherapy, HDR.


Assuntos
Braquiterapia/instrumentação , Braquiterapia/métodos , Imagens de Fantasmas , Neoplasias da Próstata/radioterapia , Dosagem Radioterapêutica , Radioterapia Guiada por Imagem/métodos , Tungstênio/química , Simulação por Computador , Humanos , Processamento de Imagem Assistida por Computador/métodos , Masculino , Método de Monte Carlo , Neoplasias da Próstata/patologia , Espalhamento de Radiação , Software
2.
Cancer Biother Radiopharm ; 18(3): 451-61, 2003 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-12954133

RESUMO

A software package to investigate absorbed doses and dose-rates at the cellular and multicellular scale has been developed that considers two- and three-dimensional activity distributions and makes use of analytical representations of the point-dose kernels for (131)I, (32)P, and (90)Y. This software allows cell assemblies to be simulated by definition of the number, size, and geometry of cells and their nuclei, and radionuclide uptake can be specified to occur within the nucleus, the cytoplasm, at the membrane, or within the extracellular space. The software has been validated at a cellular scale by comparison with results obtained using spherical geometry, as found in the literature. At a multicellular scale, comparisons were made with a Monte Carlo simulation in voxel geometry. The software has been designed to work within a user-defined voxel geometry. This geometry is useful not only to simulate complex cell assemblies and realistic heterogeneous radionuclide distributions, but will also allow the use of histological and autoradiographic data. Absorbed dose distributions for a single cell calculated using this code varied significantly with activity localization within the cell, and to a lesser extent, with the cellular geometry. At a multicellular level, a two-dimensional heterogeneous activity distribution inferred from a two-dimensional image of a slice throughout a spheroid was used to calculate a dose-rate distribution. This resulted in a heterogeneous dose-rate delivery even for longer-range radionuclides such as (90)Y and (32)P.


Assuntos
Células/efeitos da radiação , Método de Monte Carlo , Radioisótopos/uso terapêutico , Planejamento da Radioterapia Assistida por Computador/métodos , Software , Absorção , Simulação por Computador , Humanos , Imagens de Fantasmas , Doses de Radiação , Dosagem Radioterapêutica , Validação de Programas de Computador
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