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采用准单色X射线的成像治疗计算机断层扫描

Imaging-therapy computed tomography with quasi-monochromatic X-rays.

作者信息

Jost Gregor, Golfier Sven, Lawaczeck Ruediger, Weinmann Hanns-Joachim, Gerlach Martin, Cibik Levent, Krumrey Michael, Fratzscher Daniel, Rabe Johannis, Arkadiev Vladimir, Haschke Michael, Langhoff Norbert, Wedell Reiner, Luedemann Lutz, Wust Peter, Pietsch Hubertus

机构信息

Bayer Schering Pharma AG, Contrast Media Research, Muellerstrasse 178, 13353 Berlin, Germany.

出版信息

Eur J Radiol. 2008 Dec;68(3 Suppl):S63-8. doi: 10.1016/j.ejrad.2008.04.040. Epub 2008 Jun 30.

Abstract

INTRODUCTION

Computed tomography (CT) is a widespread and highly precise technique working in the energy range around 50-100 keV. For radiotherapy, however, the MeV energy range enables a better dose distribution. This gap between diagnosis and therapy can be overcome by the use of a modified CT machine in combination with heavy elements targeted to the tumour and used as photoelectric radiation enhancer.

MATERIALS AND METHODS

The experimental setup consists of an X-ray optical module mounted at the exit of the X-ray tube of a clinical CT. The module converts the standard fan-shaped beam into a high intensity, monochromatized and focused beam. The radiation was characterized using an energy-dispersive detection system calibrated by synchrotron radiation and gel dosimetry. The photoelectric radiation enhancement for different elements was calculated and experimentally verified.

RESULTS

The X-ray optical module filters selectively the energy of the tungsten K alpha-emission line (59.3 keV) with a full width at half maximum (FWHM) of 5 keV and focused the radiation onto a focal spot which coincides with the isocentre of the gantry. This results in a steep dose gradient at the centre of rotation qualified for locoregional radiation therapy. The photon energy of the quasi-monochromatic radiation agrees with the energy range of maximal photoelectric dose enhancement for gadolinium and iodine.

CONCLUSION

An additional X-ray optical module optimized for targeted therapy and photoelectric dose enhancement allows the combination of diagnosis and radiotherapy on a clinical CT.

摘要

引言

计算机断层扫描(CT)是一种广泛应用且高精度的技术,其工作能量范围在50 - 100 keV左右。然而,对于放射治疗而言,兆电子伏特(MeV)能量范围能实现更好的剂量分布。通过使用改良的CT机,并结合针对肿瘤的重元素作为光电辐射增强剂,可克服诊断与治疗之间的这一差距。

材料与方法

实验装置由安装在临床CT X射线管出口处的X射线光学模块组成。该模块将标准扇形束转换为高强度、单色化且聚焦的束流。使用由同步辐射校准的能量色散检测系统和凝胶剂量测定法对辐射进行表征。计算并通过实验验证了不同元素的光电辐射增强效果。

结果

X射线光学模块选择性地过滤钨Kα发射线(59.3 keV)的能量,半高宽(FWHM)为5 keV,并将辐射聚焦到与机架等中心重合的焦点上。这在旋转中心产生了陡峭的剂量梯度,适用于局部区域放射治疗。准单色辐射的光子能量与钆和碘的最大光电剂量增强能量范围一致。

结论

一个针对靶向治疗和光电剂量增强进行优化的额外X射线光学模块,能够在临床CT上实现诊断与放射治疗的结合。

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