Literature DB >> 25833792

Four-dimensional layer-stacking carbon-ion beam dose distribution by use of a lung numeric phantom.

Shinichiro Mori1, Motoki Kumagai, Kentaro Miki.   

Abstract

To extend layer-stacking irradiation to accommodate intrafractional organ motion, we evaluated the carbon-ion layer-stacking dose distribution using a numeric lung phantom. We designed several types of range compensators. The planning target volume was calculated from the respective respiratory phases for consideration of intrafractional beam range variation. The accumulated dose distribution was calculated by registering of the dose distributions at respective phases to that at the reference phase. We evaluated the dose distribution based on the following six parameters: motion displacement, direction, gating window, respiratory cycle, range-shifter change time, and prescribed dose. All parameters affected the dose conformation to the moving target. By shortening of the gating window, dose metrics for superior-inferior (SI) and anterior-posterior (AP) motions were decreased from a D95 of 94 %, Dmax of 108 %, and homogeneity index (HI) of 23 % at T00-T90, to a D95 of 93 %, Dmax of 102 %, and HI of 20 % at T40-T60. In contrast, all dose metrics except the HI were independent of respiratory cycle. All dose metrics in SI motion were almost the same in respective motion displacement, with a D95 of 94 %, Dmax of 108 %, Dmin of 89 %, and HI of 23 % for the ungated phase, and D95 of 93 %, Dmax of 102 %, Dmin of 85 %, and HI of 20 % for the gated phase. The dose conformation to a moving target was improved by the gating strategy and by an increase in the prescribed dose. A combination of these approaches is a practical means of adding them to existing treatment protocols without modifications.

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Year:  2015        PMID: 25833792     DOI: 10.1007/s12194-015-0312-7

Source DB:  PubMed          Journal:  Radiol Phys Technol        ISSN: 1865-0333


  18 in total

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2.  Effects of respiratory motion on dose uniformity with a charged particle scanning method.

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4.  Four-dimensional lung treatment planning in layer-stacking carbon ion beam treatment: comparison of layer-stacking and conventional ungated/gated irradiation.

Authors:  Shinichiro Mori; Nobuyuki Kanematsu; Hiroshi Asakura; Gregory C Sharp; Motoki Kumagai; Suguru Dobashi; Mio Nakajima; Naoyoshi Yamamoto; Susumu Kandatsu; Masayuki Baba
Journal:  Int J Radiat Oncol Biol Phys       Date:  2010-10-23       Impact factor: 7.038

5.  Design study of a raster scanning system for moving target irradiation in heavy-ion radiotherapy.

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6.  Systematic evaluation of four-dimensional hybrid depth scanning for carbon-ion lung therapy.

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7.  Broad beam three-dimensional irradiation for proton radiotherapy.

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9.  Motion compensation with a scanned ion beam: a technical feasibility study.

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10.  Amplitude-based gated phase-controlled rescanning in carbon-ion scanning beam treatment planning under irregular breathing conditions using lung and liver 4DCTs.

Authors:  Shinichiro Mori; Taku Inaniwa; Takuji Furukawa; Wataru Takahashi; Mio Nakajima; Toshiyuki Shirai; Koji Noda; Shigeo Yasuda; Naoyoshi Yamamoto
Journal:  J Radiat Res       Date:  2014-05-15       Impact factor: 2.724

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  2 in total

1.  How should we manage internal margins in four-dimensional dose assessments?

Authors:  Shinichiro Mori; Christian Graeff; Nobuyuki Kanematsu
Journal:  Radiol Phys Technol       Date:  2017-10-07

2.  Margin estimation and disturbances of irradiation field in layer-stacking carbon-ion beams for respiratory moving targets.

Authors:  Shinya Tajiri; Mutsumi Tashiro; Tomohiro Mizukami; Chihiro Tsukishima; Masami Torikoshi; Tatsuaki Kanai
Journal:  J Radiat Res       Date:  2017-11-01       Impact factor: 2.724

  2 in total

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