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同步加速器产生的微束的高分辨率3D成像。

High resolution 3D imaging of synchrotron generated microbeams.

作者信息

Gagliardi Frank M, Cornelius Iwan, Blencowe Anton, Franich Rick D, Geso Moshi

机构信息

Alfred Health Radiation Oncology, The Alfred, Melbourne, Victoria 3004, Australia and School of Medical Sciences, RMIT University, Bundoora, Victoria 3083, Australia.

Imaging and Medical Beamline, Australian Synchrotron, Clayton, Victoria 3168, Australia and Centre for Medical Radiation Physics, University of Wollongong, Wollongong, New South Wales 2500, Australia.

出版信息

Med Phys. 2015 Dec;42(12):6973-86. doi: 10.1118/1.4935410.

Abstract

PURPOSE

Microbeam radiation therapy (MRT) techniques are under investigation at synchrotrons worldwide. Favourable outcomes from animal and cell culture studies have proven the efficacy of MRT. The aim of MRT researchers currently is to progress to human clinical trials in the near future. The purpose of this study was to demonstrate the high resolution and 3D imaging of synchrotron generated microbeams in PRESAGE® dosimeters using laser fluorescence confocal microscopy.

METHODS

Water equivalent PRESAGE® dosimeters were fabricated and irradiated with microbeams on the Imaging and Medical Beamline at the Australian Synchrotron. Microbeam arrays comprised of microbeams 25-50 μm wide with 200 or 400 μm peak-to-peak spacing were delivered as single, cross-fire, multidirectional, and interspersed arrays. Imaging of the dosimeters was performed using a nikon a1 laser fluorescence confocal microscope.

RESULTS

The spatial fractionation of the MRT beams was clearly visible in 2D and up to 9 mm in depth. Individual microbeams were easily resolved with the full width at half maximum of microbeams measured on images with resolutions of as low as 0.09 μm/pixel. Profiles obtained demonstrated the change of the peak-to-valley dose ratio for interspersed MRT microbeam arrays and subtle variations in the sample positioning by the sample stage goniometer were measured.

CONCLUSIONS

Laser fluorescence confocal microscopy of MRT irradiated PRESAGE® dosimeters has been validated in this study as a high resolution imaging tool for the independent spatial and geometrical verification of MRT beam delivery.

摘要

目的

微束放射治疗(MRT)技术正在全球范围内的同步加速器上进行研究。动物和细胞培养研究的良好结果已证明MRT的有效性。目前MRT研究人员的目标是在不久的将来推进到人体临床试验。本研究的目的是使用激光荧光共聚焦显微镜展示同步加速器产生的微束在PRESAGE®剂量计中的高分辨率和三维成像。

方法

制作了水等效的PRESAGE®剂量计,并在澳大利亚同步加速器的成像和医疗束线上用微束进行照射。微束阵列由宽度为25 - 50μm、峰峰间距为200或400μm的微束组成,以单阵列、交叉射束、多方向和散布阵列的形式进行照射。使用尼康a1激光荧光共聚焦显微镜对剂量计进行成像。

结果

MRT束的空间分割在二维中清晰可见,深度可达9mm。在分辨率低至0.09μm/像素的图像上测量的微束半高宽,单个微束很容易分辨出来。获得的剖面图展示了散布的MRT微束阵列的峰谷剂量比变化,并测量了样品台测角仪对样品定位的细微变化。

结论

本研究已验证了对MRT照射的PRESAGE®剂量计进行激光荧光共聚焦显微镜检查,作为一种高分辨率成像工具,可用于独立地对MRT束传输进行空间和几何验证。

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