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Monte Carlo simulation of the effect of magnetic fields on brachytherapy dose distributions in lung tissue material

机译:蒙特卡罗仿真磁场对肺组织材料近距离放射治疗剂量分布的影响

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The aim of this work was to use TOPAS Monte Carlo simulations to model the effect of magnetic fields on dose distributions in brachytherapy lung treatments, under ideal and clinical conditions. Idealistic studies were modeled consisting of either a monoenergetic electron source of 432 keV, or a polyenergetic electron source using the spectrum of secondary electrons produced by 192 Ir gamma-ray irradiation. The electron source was positioned in the center of a homogeneous, lung tissue phantom (ρ = 0.26 g/cm 3 ). Conversely, the clinical study was simulated using the VariSource VS2000 192 Ir source in a patient with a lung tumor. Three contoured volumes were considered: the tumor, the planning tumor volume (PTV), and the lung. In all studies, dose distributions were calculated in the presence or absence of a constant magnetic field of 3T. Also, TG-43 parameters were calculated for the VariSource and compared with published data from EGS-brachy (EGSnrc) and PENELOPE. The magnetic field affected the dose distributions in the idealistic studies. For the monoenergetic and poly-energetic studies, the radial distance of the 10% iso-dose line was reduced in the presence of the magnetic field by 64.9% and 24.6%, respectively. For the clinical study, the magnetic field caused differences of 10% on average in the patient dose distributions. Nevertheless, differences in dose-volume histograms were below 2%. Finally, for TG-43 parameters, the dose-rate constant from TOPAS differed by 0.09% ± 0.33% and 0.18% ± 0.33% with respect to EGS-brachy and PENELOPE, respectively. The geometry and anisotropy functions differed within 1.2% ± 1.1%, and within 0.0% ± 0.3%, respectively. The Lorentz forces inside a 3T magnetic resonance machine during 192 Ir brachytherapy treatment of the lung are not large enough to affect the tumor dose distributions significantly, as expected. Nevertheless, large local differences were found in the lung tissue. Applications of this effect are therefore limited by the fact that meaningful differences appeared only in regions containing air, which is not abundant inside the human.
机译:这项工作的目的是使用Topas Monte Carlo模拟来模拟磁场对近距离和临床条件下的近距离治疗的剂量分布的影响。使用由192 IRγ射线辐射产生的二次电子的光谱,模拟了由432keV的单元电子来源的理想化学研究。将电子源定位在均匀的肺组织幻影(ρ= 0.26g / cm 3)的中心。相反,使用肺肿瘤的患者varisource与varisource Vs2000 192 IR源模拟临床研究。考虑了三个轮廓量:肿瘤,计划肿瘤体积(PTV)和肺。在所有研究中,在存在或不存在3T的恒定磁场的情况下计算剂量分布。此外,针对Varisource计算了TG-43参数,并与来自EGS-Brachy(EGSNRC)和Penelope的公开数据进行了比较。磁场影响了理想主义研究中的剂量分布。对于单体和多能量研究,10%ISO-DESE系的径向距离分别在磁场的存在下降低了64.9%和24.6%。对于临床研究,磁场在患者剂量分布中平均引起10%的差异。然而,剂量 - 体积直方图的差异低于2%。最后,对于TG-43参数,相对于Egs-Brachy和Penelope,来自TOPA的剂量率常数不同0.09%±0.33%和0.18%±0.33%。几何和各向异性官能量在1.2%±1.1%内,分别在0.0%±0.3%以内。在192年的3T磁共振机器内的洛伦兹力在192年IR近距离放射治疗肺部的处理不足以显着影响肿瘤剂量分布,如预期的那样。然而,在肺组织中发现了大的局部差异。因此,这种效果的应用仅限于,仅在含有空气的区域出现有意义的差异,这在人类内部并不丰富。

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