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使用中能光子(IEP)改善立体定向放射外科的放射半影。

Improvement of radiological penumbra using intermediate energy photons (IEP) for stereotactic radiosurgery.

作者信息

O'Malley Lauren, Pignol Jean-Philippe, Beachey David J, Keller Brian M, Presutti Joseph, Sharpe Michael

机构信息

Department of Medical Biophysics, Sunnybrook and Women's Health Sciences Centre, 2075 Bayview Avenue Toronto, Ontario M4N 3M5, Canada.

出版信息

Phys Med Biol. 2006 May 21;51(10):2537-48. doi: 10.1088/0031-9155/51/10/012. Epub 2006 Apr 26.

Abstract

Using efficient immobilization and dedicated beam collimation devices, stereotactic radiosurgery ensures highly conformal treatment of small tumours with limited microscopic extension. One contribution to normal tissue irradiation remains the radiological penumbra. This work aims at demonstrating that intermediate energy photons (IEP), above orthovoltage but below megavoltage, improve dose distribution for stereotactic radiosurgery for small irradiation field sizes due to a dramatic reduction of radiological penumbra. Two different simulation systems were used: (i) Monte Carlo simulation to investigate the dose distribution of monoenergetic IEP between 100 keV and 1 MeV in water phantom; (ii) the Pinnacle3 TPS including a virtual IEP unit to investigate the dosimetry benefit of treating with 11 non-coplanar beams a 2 cm tumour in the middle of a brain adjacent to a 1 mm critical structure. Radiological penumbrae below 300 microm are generated for field size below 2 x 2 cm2 using monoenergetic IEP beams between 200 and 400 keV. An 800 kV beam generated in a 0.5 mm tungsten target maximizes the photon intensity in this range. Pinnacle3 confirms the dramatic reduction in penumbra size. DVHs show for a constant dose distribution conformality, improved dose distribution homogeneity and better sparing of critical structures using a 800 kV beam compared to a 6 MV beam.

摘要

使用高效的固定装置和专用的束准直设备,立体定向放射外科手术可确保对微小肿瘤进行高度适形治疗,且肿瘤的微观扩展有限。对正常组织照射的一个影响因素仍然是放射半影。这项工作旨在证明,介于正交电压之上但低于兆伏电压的中能光子(IEP),由于放射半影的显著减少,可改善小照射野尺寸的立体定向放射外科手术的剂量分布。使用了两种不同的模拟系统:(i)蒙特卡罗模拟,用于研究100 keV至1 MeV之间的单能IEP在水模体中的剂量分布;(ii)Pinnacle3治疗计划系统,包括一个虚拟IEP单元,用于研究使用11个非共面射束治疗位于大脑中部与1 mm关键结构相邻的2 cm肿瘤的剂量学益处。使用200至400 keV之间的单能IEP射束,对于小于2×2 cm2的射野尺寸,可产生低于300微米的放射半影。在0.5 mm钨靶中产生的800 kV射束可使该范围内的光子强度最大化。Pinnacle3证实了半影尺寸的显著减小。剂量体积直方图显示,对于恒定的剂量分布适形度,与6 MV射束相比,使用800 kV射束可改善剂量分布均匀性,并更好地保护关键结构。

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