Dosimetric Comparison of Volumetric Modulated Arc Therapy (VMAT), 5F Intensity Modulated Radiotherapy (IMRT) and 3D Conformal Radiotherapy (3DCRT) in Rectal Carcinoma Receiving Neoadjuvant Chemoradiotherapy
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http://www.scirp.org/journal/PaperInformation.aspx?PaperID=53591#.VMnk7CzQrzE
Author(s)
Ge Wen1,2, Jinshan Zhang2, Feng Chi1, Li Chen1, Sijuan Huang1, Shaoqing Niu1, Yuanhong Gao1, Bixiu Wen3*, Yujing Zhang1*
Affiliation(s)
1Department
of Radiation Oncology, Sun Yat-sen University Cancer Center, State Key
Laboratory of Oncology in Southern China, Collaborative Innovation
Center of Cancer Medicine, Guangzhou, China.
2Department of Radiation Oncology, The Third Affiliated Hospital of Guangzhou Medical University, Guangzhou, China.
3Department of Radiation Oncology, The First Affiliated Hospital, Sun Yat-sen University, Guangzhou, China.
2Department of Radiation Oncology, The Third Affiliated Hospital of Guangzhou Medical University, Guangzhou, China.
3Department of Radiation Oncology, The First Affiliated Hospital, Sun Yat-sen University, Guangzhou, China.
ABSTRACT
Objective:
To investigate better dosimetric distribution of volumetric modulated
arc therapy (VMAT) vs. 5F intensity modulated radiotherapy (IMRT) and 3D
conformal radiotherapy (3DCRT) in patients with locally advanced rectal
cancer (LARC) when treated with neoadjuvant chemoradiotherapy. Methods:
3D-CRT, 5F-IMRT and VMAT plans for preoperative radiotherapy were
66011designed in 12 patients with locally advanced rectal cancer. The
conformity index (CI) and homogeneity index (HI) in target volume, and
the dose and volume of the organs at risk (OAR) irradiated including
small bowel, bladder and bilatera1 femoral heads were compared among the
three plans. Results: The CI for planning target volume (PTV) 2 and HI
for PTV1 of VMRT and 5F-IMRT were superior to 3D-CRT. The CI of VMAT,
5F-IMRT and 3D-CRT plans were 0.71, 0.69 and 0.62 (p = 0.011 and p =
0.019, respectively). The HI of the VMAT and 5F-IMRT plans were both
1.04 and 3D-CRT planning was 1.06 (p = 0.022 and p = 0.006,
respectively). The V35 - V45 of small bowel in VMAT were significantly
less than in 5F-IMRT and 3D-CRT. V35 was 47.0, 56.4, and 72.8 cm3 for
VMAT, 5F-IMRT, and 3D-CRT (p = 0.021 and p = 0.034, respectively), while
V40 was 30.5, 35.5, 45.1 cm3 (p = 0.024 and p = 0.032, respectively)
and V45 was 15.1, 18.1, 30.0 cm3 (p = 0.033 and p = 0.032,
respectively). The D5, V30 and V50 of bladder in 3D-CRT were less than
in VMAT and 5F-IMRT planning (p = 0.034, 0.004, 0.002 and p = 0.027,
0.003, 0.002, respectively). The Dmean of left femoral head in VMAT and
5F-IMRT were less than in 3D-CRT planning (p = 0.028 and p = 0.022,
respectively) and the Dmean, V30 of right femoral head in VMAT and
5F-IMRT were better than in 3D-CRT planning (p = 0.044, 0.036 and p =
0.023, 0.028, respectively). Conclusions: Dosimetric analyses
demonstrated that IMRT is superior to 3D-CRT in the conformity and
homogeneity of dose distribution to the target volume, and provide a
better protection to OARs sparing in patients with locally advanced
rectal cancer for preoperative radiotherapy. With similar target
coverage, VMRT is superior to 5F-IMRT in normal tissue sparing.
Cite this paper
References
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