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横向磁场的适形光子束治疗:一项蒙特卡罗研究。

Conformal photon-beam therapy with transverse magnetic fields: a Monte Carlo study.

作者信息

Li X A, Reiffel L, Chu J, Naqvi S

机构信息

Department of Radiation Oncology, University of Maryland, Baltimore, 21201-1595, USA.

出版信息

Med Phys. 2001 Feb;28(2):127-33. doi: 10.1118/1.1344207.

Abstract

This work studies the idea of using strong transverse magnetic (B) fields with high-energy photon beams to enhance dose distributions for conformal radiotherapy. EGS4 Monte Carlo code is modified to incorporate charged particle transport in B fields and is used to calculate effects of B fields on dose distributions for a variety of high-energy photon beams. Two types of hypothetical B fields, curl-free linear fields and dipole fields, are used to demonstrate the idea. The major results from the calculation for the linear B fields are: (1) strong transverse B fields (> 1 T) with high longitudinal gradients (G) (> 0.5 T/cm) can produce dramatic dose enhancement as well as dose reduction in localized regions for high-energy photon beams; (2) the magnitude of the enhancement (reduction) and the geometric extension and the location of this enhancement (reduction) depend on the strength and gradient of the B field, and photon-beam energy; (3) for a given B field, the dose enhancement generally increases with photon-beam energy; (4) for a 5 T B field with infinite longitudinal gradient (solenoidal field), up to 200% of dose enhancement and 40% of dose reduction were obtained along the central axis of a 15 MV photon beam; and (5) a 60% of dose enhancement was observed over a 2 cm depth region for the 15 MV beam when B = 5 T and G = 2.5 T/cm. These results are also observed, qualitatively, in the calculation with the dipole B fields. Calculations for a variety of B fields and beam configurations show that, by employing a well-designed B field in photon-beam radiotherapy, it is possible to achieve a significant dose enhancement within the target, while obtaining a substantial dose reduction over critical structures.

摘要

本研究探讨了利用强横向磁场(B)与高能光子束相结合来改善适形放射治疗剂量分布的想法。对EGS4蒙特卡罗代码进行了修改,以纳入带电粒子在磁场中的传输,并用于计算各种高能光子束的磁场对剂量分布的影响。使用两种假设的磁场,即无旋线性场和偶极场来阐述这一想法。线性磁场计算的主要结果如下:(1)具有高纵向梯度(G)(>0.5 T/cm)的强横向磁场(>1 T)可使高能光子束在局部区域产生显著的剂量增强以及剂量降低;(2)增强(降低)的幅度、几何扩展以及这种增强(降低)的位置取决于磁场的强度和梯度以及光子束能量;(3)对于给定的磁场,剂量增强通常随光子束能量增加;(4)对于具有无限纵向梯度的5 T磁场(螺线管场),在15 MV光子束的中心轴上可获得高达200%的剂量增强和40%的剂量降低;(5)当B = 5 T且G = 2.5 T/cm时,在15 MV光束的2 cm深度区域内观察到60%的剂量增强。在偶极磁场的计算中也定性地观察到了这些结果。对各种磁场和束配置的计算表明,通过在光子束放射治疗中采用精心设计的磁场,可以在靶区内实现显著的剂量增强,同时在关键结构上实现大幅的剂量降低。

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