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添加纳米颗粒的皮肤治疗中的辐射剂量增强:千伏光子束和兆伏电子束的蒙特卡罗研究

Radiation dose enhancement in skin therapy with nanoparticle addition: A Monte Carlo study on kilovoltage photon and megavoltage electron beams.

作者信息

Zheng Xiao J, Chow James C L

机构信息

Xiao J Zheng, Department of Physics, Ryerson University, Toronto, ON M5B 2K3, Canada.

出版信息

World J Radiol. 2017 Feb 28;9(2):63-71. doi: 10.4329/wjr.v9.i2.63.

Abstract

AIM

To investigated the dose enhancement due to the incorporation of nanoparticles in skin therapy using the kilovoltage (kV) photon and megavoltage (MV) electron beams. Monte Carlo simulations were used to predict the dose enhancement when different types and concentrations of nanoparticles were added to skin target layers of varying thickness.

METHODS

Clinical kV photon beams (105 and 220 kVp) and MV electron beams (4 and 6 MeV), produced by a Gulmay D3225 orthovoltage unit and a Varian 21 EX linear accelerator, were simulated using the EGSnrc Monte Carlo code. Doses at skin target layers with thicknesses ranging from 0.5 to 5 mm for the photon beams and 0.5 to 10 mm for the electron beams were determined. The skin target layer was added with the Au, Pt, I, Ag and FeO nanoparticles with concentrations ranging from 3 to 40 mg/mL. The dose enhancement ratio (DER), defined as the dose at the target layer with nanoparticle addition divided by the dose at the layer without nanoparticle addition, was calculated for each nanoparticle type, nanoparticle concentration and target layer thickness.

RESULTS

It was found that among all nanoparticles, Au had the highest DER (5.2-6.3) when irradiated with kV photon beams. Dependence of the DER on the target layer thickness was not significant for the 220 kVp photon beam but it was for 105 kVp beam for Au nanoparticle concentrations higher than 18 mg/mL. For other nanoparticles, the DER was dependent on the atomic number of the nanoparticle and energy spectrum of the photon beams. All nanoparticles showed an increase of DER with nanoparticle concentration during the photon beam irradiations regardless of thickness. For electron beams, the Au nanoparticles were found to have the highest DER (1.01-1.08) when the beam energy was equal to 4 MeV, but this was drastically lower than the DER values found using photon beams. The DER was also found affected by the depth of maximum dose of the electron beam and target thickness. For other nanoparticles with lower atomic number, DERs in the range of 0.99-1.02 were found using the 4 and 6 MeV electron beams.

CONCLUSION

In nanoparticle-enhanced skin therapy, Au nanoparticle addition can achieve the highest dose enhancement with 105 kVp photon beams. Electron beams, while popular for skin therapy, did not produce as high dose enhancements as kV photon beams. Additionally, the DER is dependent on nanoparticle type, nanoparticle concentration, skin target thickness and energies of the photon and electron beams.

摘要

目的

研究在皮肤治疗中使用千伏(kV)光子束和兆伏(MV)电子束时,纳米颗粒掺入所带来的剂量增强效果。采用蒙特卡罗模拟来预测当向不同厚度的皮肤靶层中添加不同类型和浓度的纳米颗粒时的剂量增强情况。

方法

使用EGSnrc蒙特卡罗代码模拟了由Gulmay D3225正交电压装置和Varian 21 EX直线加速器产生的临床kV光子束(105和220 kVp)以及MV电子束(4和6 MeV)。确定了光子束在厚度为0.5至5 mm的皮肤靶层以及电子束在厚度为0.5至10 mm的皮肤靶层中的剂量。向皮肤靶层中添加浓度范围为3至40 mg/mL的金、铂、碘、银和氧化铁纳米颗粒。计算了每种纳米颗粒类型、纳米颗粒浓度和靶层厚度下的剂量增强比(DER),其定义为添加纳米颗粒的靶层剂量除以未添加纳米颗粒的层剂量。

结果

发现在所有纳米颗粒中,用kV光子束照射时金的DER最高(5.2 - 6.3)。对于220 kVp光子束,DER对靶层厚度的依赖性不显著,但对于金纳米颗粒浓度高于18 mg/mL的105 kVp束,DER对靶层厚度有依赖性。对于其他纳米颗粒,DER取决于纳米颗粒的原子序数和光子束的能谱。在光子束照射期间,无论厚度如何,所有纳米颗粒的DER均随纳米颗粒浓度增加。对于电子束,当束能量等于4 MeV时,发现金纳米颗粒的DER最高(1.01 - 1.08),但这远低于使用光子束时发现的DER值。还发现DER受电子束最大剂量深度和靶厚度的影响。对于其他原子序数较低的纳米颗粒,使用4和6 MeV电子束时DER在0.99 - 1.02范围内。

结论

在纳米颗粒增强的皮肤治疗中,添加金纳米颗粒在105 kVp光子束下可实现最高的剂量增强。电子束虽然在皮肤治疗中很常用,但产生的剂量增强不如kV光子束高。此外,DER取决于纳米颗粒类型、纳米颗粒浓度、皮肤靶厚度以及光子和电子束的能量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a62c/5334503/1e41180ce26d/WJR-9-63-g001.jpg

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