Jeong Jeho, Chen Qing, Febo Robert, Yang Jie, Pham Hai, Xiong Jian-Ping, Zanzonico Pat B, Deasy Joseph O, Humm John L, Mageras Gig S
Department of Medical Physics, Memorial Sloan-Kettering Cancer Center, New York, NY, USA.
Department of Medical Physics, Memorial Sloan-Kettering Cancer Center, New York, NY, USA
Technol Cancer Res Treat. 2016 Jun;15(3):460-71. doi: 10.1177/1533034615584522. Epub 2015 May 6.
Although spatially precise systems are now available for small-animal irradiations, there are currently limited software tools available for treatment planning for such irradiations. We report on the adaptation, commissioning, and evaluation of a 3-dimensional treatment planning system for use with a small-animal irradiation system. The 225-kV X-ray beam of the X-RAD 225Cx microirradiator (Precision X-Ray) was commissioned using both ion-chamber and radiochromic film for 10 different collimators ranging in field size from 1 mm in diameter to 40 × 40 mm(2) A clinical 3-dimensional treatment planning system (Metropolis) developed at our institution was adapted to small-animal irradiation by making it compatible with the dimensions of mice and rats, modeling the microirradiator beam orientations and collimators, and incorporating the measured beam data for dose calculation. Dose calculations in Metropolis were verified by comparison with measurements in phantoms. Treatment plans for irradiation of a tumor-bearing mouse were generated with both the Metropolis and the vendor-supplied software. The calculated beam-on times and the plan evaluation tools were compared. The dose rate at the central axis ranges from 74 to 365 cGy/min depending on the collimator size. Doses calculated with Metropolis agreed with phantom measurements within 3% for all collimators. The beam-on times calculated by Metropolis and the vendor-supplied software agreed within 1% at the isocenter. The modified 3-dimensional treatment planning system provides better visualization of the relationship between the X-ray beams and the small-animal anatomy as well as more complete dosimetric information on target tissues and organs at risk. It thereby enhances the potential of image-guided microirradiator systems for evaluation of dose-response relationships and for preclinical experimentation generally.
尽管现在已有适用于小动物辐照的空间精确系统,但目前可用于此类辐照治疗计划的软件工具有限。我们报告了一种用于小动物辐照系统的三维治疗计划系统的适配、调试和评估情况。使用离子室和放射变色胶片对X-RAD 225Cx微型辐照器(Precision X-Ray)的225 kV X射线束进行调试,该射线束针对10种不同的准直器进行了调试,准直器的射野尺寸范围从直径1 mm到40×40 mm²。我们机构开发的临床三维治疗计划系统(Metropolis)通过使其与小鼠和大鼠的尺寸兼容、对微型辐照器的射束方向和准直器进行建模,并纳入测量的射束数据以进行剂量计算,从而适配于小动物辐照。通过与体模测量结果进行比较,验证了Metropolis中的剂量计算。使用Metropolis和供应商提供的软件生成了荷瘤小鼠的辐照治疗计划。比较了计算出的照射时间和计划评估工具。中心轴处的剂量率根据准直器尺寸在74至365 cGy/分钟范围内变化。对于所有准直器,Metropolis计算的剂量与体模测量结果的偏差在3%以内。Metropolis和供应商提供的软件计算的等中心处照射时间偏差在1%以内。改进后的三维治疗计划系统能更好地可视化X射线束与小动物解剖结构之间的关系,以及提供关于靶组织和危险器官更完整的剂量学信息。因此,它增强了图像引导微型辐照器系统评估剂量反应关系以及一般临床前实验的潜力。