1. Monte Carlo-based optimization of glioma capsule design for enhanced brachytherapy.
- Author
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Li, Dongjie, Liang, Yu, Yao, Gang, Guan, Zhongbao, Zhao, Hongtao, Zhang, Nan, Jiang, Jicheng, and Gao, Weida
- Subjects
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ABSORBED dose , *MONTE Carlo method , *RADIOISOTOPE brachytherapy , *GLIOMAS , *TUMOR treatment - Abstract
The use of radiotherapy in tumor treatment has become increasingly prominent and has emerged as one of the main tools for treating malignant tumors. Current radiation therapy for glioma employs 125I seeds for brachytherapy, which cannot be combined with radiotherapy and chemotherapy. To address this limitation, this paper proposes a dual-microcavity capsule structure that integrates radiotherapy and chemotherapy. The Monte Carlo simulation method is used to simulate the structure of the dual-microcavity capsule with a 125I liquid radioactive source. Based on the simulation results, two kinds of dual-microcavity capsule structures are optimized, and the optimized dual-microcavity capsule structure is obtained. Finally, the dosimetric parameters of the two optimized dual-microcavity capsule structures are analyzed and compared with those of other 125I seeds. The optimization tests show that the improved dual-capsule dual-microcavity structure is more effective than the single-capsule dual-microcavity structure. At an activity of 5 mCi, the average absorbed dose rate is 71.2 cGy/h in the center of the optimized dual-capsule dual-microcavity structure and 45.8 cGy/h in the center of the optimized single-capsule dual-microcavity structure. Although the radial dose function and anisotropy function exhibite variations from the data of other 125I seeds, they are generally similar. The absorbed dose rate decreases exponentially with increasing distance from the center of the capsule, which can reduce the damage to the surrounding tissues and organs while increasing the dose. The capsule structure has a better irradiation effect than conventional 125I seeds and can accomplish long-term, stable, low-dose continuous irradiation to form local high-dose radiation therapy for glioma. • Development of a novel dual-microcavity capsule structure for integrated radiotherapy and chemotherapy of glioma. • Optimize capsule structure and achieve high dose rates in the tumor center using Monte Carlo simulation. • Orthogonal tests were performed to optimize the capsule design parameters. • Improved dual-capsule dual-microcavity structure shows better efficacy than single-capsule dual-microcavity structure. [ABSTRACT FROM AUTHOR]
- Published
- 2023
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