Dosimetric verification of small fields in the lung using lung-equivalent polymer gel and Monte Carlo simulation

被引:10
|
作者
Gharehaghaji, Nahideh [1 ]
Dadgar, Habib Alah [2 ]
机构
[1] Tabriz Med Sch, Dept Paramed, Tabriz, Iran
[2] RAZAVI Hosp, Dept Med Phys, Mashhad, Iran
关键词
Lung-equivalent gel; MCNP; magnetic resonance imaging; small field dosimetry; RAY COMPUTED-TOMOGRAPHY; RADIATION-DOSE DISTRIBUTIONS; RAMAN-SPECTROSCOPY; MRI; ARTIFACTS; DISEQUILIBRIUM; INHOMOGENEITY; ALGORITHMS; SCANNER; PHANTOM;
D O I
10.4103/0973-1482.191040
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: The main purpose of this study was evaluate a polymer-gel-dosimeter (PGD) for three-dimensional verification of dose distributions in the lung that is called lung-equivalent gel (LEG) and then to compare its result with Monte Carlo (MC) method. Materials and Methods: In the present study, to achieve a lung density for PGD, gel is beaten until foam is obtained, and then sodium dodecyl sulfate is added as a surfactant to increase the surface tension of the gel. The foam gel was irradiated with 1 cm x 1 cm field size in the 6 MV photon beams of ONCOR SIEMENS LINAC, along the central axis of the gel. The LEG was then scanned on a 1.5 Tesla magnetic resonance imaging scanner after irradiation using a multiple-spin echo sequence. Least-square fitting the pixel values from 32 consecutive images using a single exponential decay function derived the R2 relaxation rates. Moreover, 6 and 18 MV photon beams of ONCOR SIEMENS LINAC are simulated using MCNPX MC Code. The MC model is used to calculate the depth dose water and low-density water resembling the soft tissue and lung, respectively. Results: Percentages of dose reduction in the lung region relative to homogeneous phantom for 6 MV photon beam were 44.6%, 39%, 13%, and 7% for 0.5 cm x 0.5 cm, 1 cm x 1 cm, 2 cm x 2 cm, and 3 cm x 3 cm fields, respectively. For 18 MV photon beam, the results were found to be 82%, 69%, 46%, and 25.8% for the same field sizes, respectively. Preliminary results show good agreement between depth dose measured with the LEG and the depth dose calculated using MCNP code. Conclusion: Our study showed that the dose reduction with small fields in the lung was very high. Thus, inaccurate prediction of absorbed dose inside the lung and also lung/soft-tissue interfaces with small photon beams may lead to critical consequences for treatment outcome.
引用
收藏
页码:278 / 286
页数:9
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