Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.

<h4>Purpose</h4>Electron radiotherapy is a labor-intensive treatment option that is complicated by the need for field shaping blocks. These blocks are typically made from casting Cerrobend alloys containing lead and cadmium. This is a highly toxic process with limited precision. This wor...

Full description

Bibliographic Details
Main Authors: Lawrie Skinner, Benjamin P Fahimian, Amy S Yu
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2019-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0217757
id doaj-c1aba3c54ded4cc19163c84dfe49ad7b
record_format Article
spelling doaj-c1aba3c54ded4cc19163c84dfe49ad7b2021-03-04T10:29:15ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-01146e021775710.1371/journal.pone.0217757Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.Lawrie SkinnerBenjamin P FahimianAmy S Yu<h4>Purpose</h4>Electron radiotherapy is a labor-intensive treatment option that is complicated by the need for field shaping blocks. These blocks are typically made from casting Cerrobend alloys containing lead and cadmium. This is a highly toxic process with limited precision. This work aims to provide streamlined and more precise electron radiotherapy by 3D using printing techniques.<h4>Methods</h4>The 3D printed electron cutout consists of plastic shells filled with 2 mm diameter tungsten ball bearings. Five clinical Cerrobend defined field were compared to the planned fields by measuring the light field edge when mounted in the electron applicator on a linear accelerator. The dose transmitted through the 3D printed and Cerrobend cutouts was measured using an IC profiler ion chamber array with 6 MeV and 16 MeV beams. Dose profiles from the treatment planning system were also compared to the measured dose profiles. Centering and full width half maximum (FWHM) metrics were taken directly from the profiler software.<h4>Results</h4>The transmission of a 16MeV beam through a 12 mm thick layer of tungsten ball bearings agreed within 1% of a 15 mm thick Cerrobend block (measured with an ion chamber array). The radiation fields shaped by ball bearing filled 3D printed cutout were centered within 0.4 mm of the planned outline, whereas the Cerrobend cutout fields had shift errors of 1-3 mm, and shape errors of 0.5-2 mm. The average shift of Cerrobend cutouts was 2.3 mm compared to the planned fields (n = 5). Beam penumbra of the 3D printed cutouts was found to be equivalent to the 15 mm thick Cerrobend cutout. The beam profiles agreed within 1.2% across the whole 30 cm profile widths.<h4>Conclusions</h4>This study demonstrates that with a proper quality assurance procedure, 3D-printed cutouts can provide more accurate electron radiotherapy with reduced toxicity compared to traditional Cerrobend methods.https://doi.org/10.1371/journal.pone.0217757
collection DOAJ
language English
format Article
sources DOAJ
author Lawrie Skinner
Benjamin P Fahimian
Amy S Yu
spellingShingle Lawrie Skinner
Benjamin P Fahimian
Amy S Yu
Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
PLoS ONE
author_facet Lawrie Skinner
Benjamin P Fahimian
Amy S Yu
author_sort Lawrie Skinner
title Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
title_short Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
title_full Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
title_fullStr Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
title_full_unstemmed Tungsten filled 3D printed field shaping devices for electron beam radiation therapy.
title_sort tungsten filled 3d printed field shaping devices for electron beam radiation therapy.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2019-01-01
description <h4>Purpose</h4>Electron radiotherapy is a labor-intensive treatment option that is complicated by the need for field shaping blocks. These blocks are typically made from casting Cerrobend alloys containing lead and cadmium. This is a highly toxic process with limited precision. This work aims to provide streamlined and more precise electron radiotherapy by 3D using printing techniques.<h4>Methods</h4>The 3D printed electron cutout consists of plastic shells filled with 2 mm diameter tungsten ball bearings. Five clinical Cerrobend defined field were compared to the planned fields by measuring the light field edge when mounted in the electron applicator on a linear accelerator. The dose transmitted through the 3D printed and Cerrobend cutouts was measured using an IC profiler ion chamber array with 6 MeV and 16 MeV beams. Dose profiles from the treatment planning system were also compared to the measured dose profiles. Centering and full width half maximum (FWHM) metrics were taken directly from the profiler software.<h4>Results</h4>The transmission of a 16MeV beam through a 12 mm thick layer of tungsten ball bearings agreed within 1% of a 15 mm thick Cerrobend block (measured with an ion chamber array). The radiation fields shaped by ball bearing filled 3D printed cutout were centered within 0.4 mm of the planned outline, whereas the Cerrobend cutout fields had shift errors of 1-3 mm, and shape errors of 0.5-2 mm. The average shift of Cerrobend cutouts was 2.3 mm compared to the planned fields (n = 5). Beam penumbra of the 3D printed cutouts was found to be equivalent to the 15 mm thick Cerrobend cutout. The beam profiles agreed within 1.2% across the whole 30 cm profile widths.<h4>Conclusions</h4>This study demonstrates that with a proper quality assurance procedure, 3D-printed cutouts can provide more accurate electron radiotherapy with reduced toxicity compared to traditional Cerrobend methods.
url https://doi.org/10.1371/journal.pone.0217757
work_keys_str_mv AT lawrieskinner tungstenfilled3dprintedfieldshapingdevicesforelectronbeamradiationtherapy
AT benjaminpfahimian tungstenfilled3dprintedfieldshapingdevicesforelectronbeamradiationtherapy
AT amysyu tungstenfilled3dprintedfieldshapingdevicesforelectronbeamradiationtherapy
_version_ 1714805875747586048