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Energy- and intensity-modulated electron beams for radiotherapy.

机译:用于放射治疗的能量和强度调制电子束。

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This work investigates the feasibility of optimizing energy- and intensity-modulated electron beams for radiation therapy. A multileaf collimator (MLC) specially designed for modulated electron radiotherapy (MERT) was investigated both experimentally and by Monte Carlo simulations. An inverse-planning system based on Monte Carlo dose calculations was developed to optimize electron beam energy and intensity to achieve dose conformity for target volumes near the surface. The results showed that an MLC with 5 mm leaf widths could produce complex field shapes for MERT. Electron intra- and inter-leaf leakage had negligible effects on the dose distributions delivered with the MLC, even at shallow depths. Focused leaf ends reduced the electron scattering contributions to the dose compared with straight leaf ends. As anticipated, moving the MLC position toward the patient surface reduced the penumbra significantly. There were significant differences in the beamlet distributions calculated by an analytic 3-D pencil beam algorithm and the Monte Carlo method. The Monte Carlo calculated beamlet distributions were essential to the accuracy of the MERT dose distribution in cases involving large air gaps, oblique incidence and heterogeneous treatment targets (at the tissue-bone and bone-lung interfaces). To demonstrate the potential of MERT for target dose coverage and normal tissue sparing for treatment of superficial targets, treatment plans for a hypothetical treatment were compared using photon beams and MERT.
机译:这项工作研究了为放射治疗优化能量和强度调制电子束的可行性。实验和蒙特卡洛模拟研究了一种专为调制电子放射疗法(MERT)设计的多叶准直仪(MLC)。开发了一种基于蒙特卡洛剂量计算的逆计划系统,以优化电子束能量和强度,以实现接近地表目标体积的剂量一致性。结果表明,叶片宽度为5 mm的MLC可以为MERT产生复杂的场形状。即使在较浅的深度,电子的叶内和叶间泄漏对MLC传递的剂量分布的影响也可以忽略不计。与直叶末端相比,聚焦叶末端减少了电子散射对剂量的贡献。如预期的那样,将MLC位置移向患者表面会大大减少半影。解析3-D铅笔束算法和蒙特卡洛方法计算出的子束分布存在显着差异。对于涉及大气隙,斜入射和异质治疗目标(在组织-骨和骨-肺界面)的病例,蒙特卡洛计算的子束分布对于MERT剂量分布的准确性至关重要。为了证明MERT潜在的靶剂量覆盖范围和保留正常组织以治疗浅表靶的潜力,使用光子束和MERT比较了假设治疗的治疗方案。

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