Estimate of the risk of radiation-induced cancers after linear-accelerator-based breast-cancer radiotherapy

被引:0
作者
Eui Kwan Koh
Jungju Seo
Tae Seong Baek
Eun Ji Chung
Myonggeun Yoon
Hyun-ho Lee
机构
[1] Korea Basic Science Institute,Seoul Center
[2] National Health Insurance Co. Ilsan Hospital,Department of Radiation Oncology
[3] Korea University,Department of Radiological Science
来源
Journal of the Korean Physical Society | 2013年 / 63卷
关键词
Breast radiotherapy; Radiation-induced cancer; EAR; OED;
D O I
暂无
中图分类号
学科分类号
摘要
The aim of this study is to assess and compare the excess absolute risks (EARs) of radiation-induced cancers following conformal (3D-CRT), fixed-field intensity-modulated (IMRT) and volumetric modulated arc (RapidArc) radiation therapy in patients with breast cancer. 3D-CRT, IMRT and RapidArc were planned for 10 breast cancer patients. The organ-specific EAR for cancer induction was estimated using the organ equivalent dose (OED) based on computed dose volume histograms (DVHs) and the secondary doses measured at various points from the field edge. The average secondary dose per Gy treatment dose from 3D-CRT, measured 10 to 50 cm from the field edge, ranged from 8.27 to 1.04 mGy. The secondary doses per Gy from IMRT and RapidArc, however, ranged between 5.86 and 0.54 mGy, indicating that IMRT and RapidArc are associated with smaller doses of secondary radiation than 3D-CRT. The organ specific EARs for out-of-field organs, such as the thyroid, liver and colon, were higher with 3D-CRT than with IMRT or RapidArc. In contrast, EARs for in-field organs were much lower with 3D-CRT than with IMRT or RapidArc. The overall estimate of EAR indicated that the radiation-induced cancer risk was 1.8–2.0 times lower with 3D-CRT than with IMRT or RapidArc. Comparisons of EARs during breast irradiation suggested that the predicted risk of secondary cancers was lower with 3D-CRT than with IMRT or RapidArc.
引用
收藏
页码:97 / 103
页数:6
相关论文
共 113 条
  • [1] Teh B S(2001)undefined Breast J. 7 233-undefined
  • [2] Lu H H(2002)undefined Strahlenther Onkol. 178 637-undefined
  • [3] Sobremonte S(2009)undefined Radiat. Oncol. 4 27-undefined
  • [4] Bellezza D(2010)undefined Int. J. Radiat. Oncol. Biol. Phys. 76 287-undefined
  • [5] Chiu J K(2010)undefined Int. J. Radiat. Oncol. Biol. Phys. 78 288-undefined
  • [6] Carpenter L S(2008)undefined Acta Oncologica 47 391-undefined
  • [7] Dennis W S(2009)undefined Acta Oncologica 48 495-undefined
  • [8] Woo S Y(2008)undefined Int. J. Radiat. Oncol. Biol. Phys. 72 1021-undefined
  • [9] Butler E B(2003)undefined Int. J. Radiat. Oncol. Biol. Phys. 56 573-undefined
  • [10] Thilmann C(2000)undefined J. Neurosurg. 93 219-undefined