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技术说明:在动态准直质子治疗过程中优化照射野和调强器位置。

Technical Note: Optimization of spot and trimmer position during dynamically collimated proton therapy.

机构信息

Department of Medical Physics, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, WI, 53705, USA.

Department of Radiation Oncology, University of Iowa, Iowa City, IA, 52242, USA.

出版信息

Med Phys. 2019 Apr;46(4):1922-1930. doi: 10.1002/mp.13441. Epub 2019 Mar 5.

Abstract

PURPOSE

To demonstrate a novel theoretical optimization design which considers beam spot and trimmer positioning in addition to beamlet weighting for dynamically collimated proton therapy (DCPT) treatments. Prior to this, the previous methods of plan optimization used to study this emerging technology relied upon an intuitive selection criterion to fix the trimmers blades for a uniform grid of beam spots before determining the individual beamlet weights. To evaluate the potential benefit from this new optimization design, a treatment planning optimization study was performed in order to compare the algorithm's functionality against the existing methods of plan optimization.

MATERIALS AND METHODS

A direct parameter optimization (DPO) method was developed to determine beam spot and trimmer positions cohesively with beamlet weighting for DCPT treatment plans. Gradients were numerically determined from applying small adjustments to the aforementioned parameters and quantifying the resulting impact on an objective function. This technique was compared to the conventional trimmer selection algorithm (TSA) which does not optimize spot position concurrently with trimmer position. Both planning methods were used to optimize a set of brain treatment plans, and the resulting dose distributions were compared with dose-volume histogram quantities in addition to target coverage, homogeneity, and conformity metrics.

RESULTS

An overall improvement to the target conformity and healthy tissue sparing was achieved with DPO over TSA while maintaining an equivalent planning target volume (PTV) coverage index for the three brain patients evaluated in this study. On average, the conformity index improved by 5.5% when utilizing DPO. A similar improvement in reducing the dose to several organs at risk was also noted.

CONCLUSION

Both the TSA and DPO planning methods can achieve highly conformal treatments with the dynamic collimation system (DCS) technology. However, an improvement in the target conformity and healthy tissue sparing was achieved by simultaneously optimizing beam spot position, trimmer location, and beamlet weights using DPO in comparison to the TSA technique.

摘要

目的

展示一种新的理论优化设计,该设计除了考虑射束权重外,还考虑射束点和调强器定位,用于动态适型质子治疗(DCPT)治疗。在此之前,用于研究这项新兴技术的先前计划优化方法依赖于直观的选择标准,在确定各个射束权重之前,先固定调强器叶片以形成均匀的射束点网格。为了评估这种新的优化设计的潜在益处,进行了一项治疗计划优化研究,以便将该算法的功能与现有的计划优化方法进行比较。

材料和方法

开发了一种直接参数优化(DPO)方法,以协同确定 DCPT 治疗计划的射束点和调强器位置以及射束权重。通过对上述参数进行小调整并量化对目标函数的影响,数值确定梯度。将这种技术与不协同优化射束位置的传统调强器选择算法(TSA)进行比较。使用这两种规划方法对一组脑治疗计划进行优化,并比较了两种方法得到的剂量分布与剂量-体积直方图参数,以及靶区覆盖、均匀性和适形性指标。

结果

在对本研究中评估的三个脑患者进行评估时,与 TSA 相比,DPO 实现了对靶区适形性和健康组织保护的整体改善,同时保持了等效的计划靶区(PTV)覆盖率指数。平均而言,当使用 DPO 时,适形性指数提高了 5.5%。还注意到减少几个危及器官剂量的类似改善。

结论

TSA 和 DPO 规划方法都可以使用动态适型系统(DCS)技术实现高度适形的治疗。然而,与 TSA 技术相比,通过同时优化射束点位置、调强器位置和射束权重,使用 DPO 可以实现靶区适形性和健康组织保护的改善。

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