Literature DB >> 21921434

Preliminary calculation of RBE-weighted dose distribution for cerebral radionecrosis in carbon-ion treatment planning.

Yuki Kase1, Takeshi Himukai, Ai Nagano, Yuji Tameshige, Shinichi Minohara, Naruhiro Matsufuji, Junetsu Mizoe, Piero Fossati, Azusa Hasegawa, Tatsuaki Kanai.   

Abstract

Cerebral radionecrosis is a significant side effect in radiotherapy for brain cancer. The purpose of this study is to calculate the relative biological effectiveness (RBE) of carbon-ion beams on brain cells and to show RBE-weighted dose distributions for cerebral radionecrosis speculation in a carbon-ion treatment planning system. The RBE value of the radionecrosis for the carbon-ion beam is calculated by the modified microdosimetric kinetic model on the assumption of a typical clinical α/β ratio of 2 Gy for cerebral radionecrosis in X-rays. This calculation method for the RBE-weighted dose is built into the treatment planning system for the carbon-ion radiotherapy. The RBE-weighted dose distributions are calculated on computed tomography (CT) images of four patients who had been treated by carbon-ion radiotherapy for astrocytoma (WHO grade 2) and who suffered from necrosis around the target areas. The necrotic areas were detected by brain scans via magnetic resonance imaging (MRI) after the treatment irradiation. The detected necrotic areas are easily found near high RBE-weighted dose regions. The visual comparison between the RBE-weighted dose distribution and the necrosis region indicates that the RBE-weighted dose distribution will be helpful information for the prediction of radionecrosis areas after carbon-ion radiotherapy.

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Year:  2011        PMID: 21921434     DOI: 10.1269/jrr.11044

Source DB:  PubMed          Journal:  J Radiat Res        ISSN: 0449-3060            Impact factor:   2.724


  4 in total

1.  Microdosimetric calculation of penumbra for biological dose in wobbled carbon-ion beams with Monte Carlo Method.

Authors:  Mikoto Tamura; Masataka Komori; Hiroshi Oguchi; Yasushi Iwamoto; Toshiya Rachi; Kenji Ota; Atsushi Hemmi; Tomohiro Shimozato; Yasunori Obata
Journal:  Radiol Phys Technol       Date:  2013-04-25

2.  The microdosimetric extension in TOPAS: development and comparison with published data.

Authors:  Hongyu Zhu; Yizheng Chen; Wonmo Sung; Aimee L McNamara; Linh T Tran; Lucas N Burigo; Anatoly B Rosenfeld; Junli Li; Bruce Faddegon; Jan Schuemann; Harald Paganetti
Journal:  Phys Med Biol       Date:  2019-07-11       Impact factor: 3.609

3.  Range modulation in proton therapy planning: a simple method for mitigating effects of increased relative biological effectiveness at the end-of-range of clinical proton beams.

Authors:  Jeffrey C Buchsbaum; Mark W McDonald; Peter A S Johnstone; Ted Hoene; Marc Mendonca; Chee-Wei Cheng; Indra J Das; Kevin P McMullen; Mark R Wolanski
Journal:  Radiat Oncol       Date:  2014-01-02       Impact factor: 3.481

4.  Microdosimetric calculation of relative biological effectiveness for design of therapeutic proton beams.

Authors:  Yuki Kase; Wataru Yamashita; Naruhiro Matsufuji; Kenta Takada; Takeji Sakae; Yoshiya Furusawa; Haruo Yamashita; Shigeyuki Murayama
Journal:  J Radiat Res       Date:  2012-11-23       Impact factor: 2.724

  4 in total

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