Sawant Amit, Smith Ryan L, Venkat Raghu B, Santanam Lakshmi, Cho Byungchul, Poulsen Per, Cattell Herbert, Newell Laurence J, Parikh Parag, Keall Paul J
Stanford Cancer Center, CA, USA.
Int J Radiat Oncol Biol Phys. 2009 Jun 1;74(2):575-82. doi: 10.1016/j.ijrobp.2008.12.057. Epub 2009 Mar 26.
We report on an integrated system for real-time adaptive radiation delivery to moving tumors. The system combines two promising technologies-three-dimensional internal position monitoring using implanted electromagnetically excitable transponders and corresponding real-time beam adaptation using a dynamic multileaf collimator (DMLC).
In a multi-institutional academic and industrial collaboration, a research version of the Calypso position monitoring system was integrated with a DMLC-based four-dimensional intensity-modulated radiotherapy delivery system using a Varian 120-leaf multileaf collimator (MLC). Two important determinants of system performance-latency (i.e., elapsed time between target motion and MLC response) and geometric accuracy-were investigated. Latency was quantified by acquiring continuous megavoltage X-ray images of a moving phantom (with embedded transponders) that was tracked in real time by a circular MLC field. The latency value was input into a motion prediction algorithm within the DMLC tracking system. Geometric accuracy was calculated as the root-mean-square positional error between the target and the centroid of the MLC aperture for patient-derived three-dimensional motion trajectories comprising two lung tumor traces and one prostate trace.
System latency was determined to be approximately 220 milliseconds. Tracking accuracy was observed to be sub-2 mm for the respiratory motion traces and sub-1 mm for prostate motion.
We have developed and characterized a research version of a novel four-dimensional delivery system that integrates nonionizing radiation-based internal position monitoring and accurate real-time DMLC-based beam adaptation. This system represents a significant step toward achieving the eventual goal of geometrically ideal dose delivery to moving tumors.
我们报告一种用于向移动肿瘤进行实时自适应放射治疗的集成系统。该系统结合了两项有前景的技术——使用植入式电磁可激发应答器进行三维内部位置监测以及使用动态多叶准直器(DMLC)进行相应的实时射束适配。
在一项多机构的学术与产业合作中,Calypso位置监测系统的一个研究版本与基于DMLC的四维调强放射治疗输送系统集成,该放射治疗输送系统使用瓦里安120叶多叶准直器(MLC)。研究了系统性能的两个重要决定因素——延迟(即目标运动与MLC响应之间的 elapsed时间)和几何精度。通过获取移动体模(带有嵌入式应答器)的连续兆伏级X射线图像来量化延迟,该移动体模由圆形MLC场实时跟踪。延迟值被输入到DMLC跟踪系统内的运动预测算法中。对于包含两条肺部肿瘤轨迹和一条前列腺轨迹的患者来源的三维运动轨迹,几何精度计算为目标与MLC孔径质心之间的均方根位置误差。
系统延迟确定约为220毫秒。观察到呼吸运动轨迹的跟踪精度低于2毫米,前列腺运动的跟踪精度低于1毫米。
我们已经开发并表征了一种新型四维输送系统的研究版本,该系统集成了基于非电离辐射的内部位置监测和基于DMLC的精确实时射束适配。该系统朝着实现向移动肿瘤进行几何上理想的剂量输送这一最终目标迈出了重要一步。