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Real-time tracking of respiratory-induced tumor motion by dose-rate regulation.

机译:通过剂量率调节实时跟踪呼吸诱导的肿瘤运动。

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摘要

We have developed a novel real-time tumor-tracking technology, called Dose-Rate-Regulated Tracking (DRRT), to compensate for tumor motion caused by breathing. Unlike other previously proposed tumor-tracking methods, this new method uses a preprogrammed dynamic multileaf collimator (MLC) sequence in combination with real-time dose-rate control. This new scheme circumvents the technical challenge in MLC-based tumor tracking, that is to control the MLC motion in real time, based on real-time detected tumor motion. The preprogrammed MLC sequence describes the movement of the tumor, as a function of breathing phase, amplitude, or tidal volume. The irregularity of tumor motion during treatment is handled by real-time regulation of the dose rate, which effectively speeds up or slows down the delivery of radiation as needed. This method is based on the fact that all of the parameters in dynamic radiation delivery, including MLC motion, are enslaved to the cumulative dose, which, in turn, can be accelerated or decelerated by varying the dose rate. Because commercially available MLC systems do not allow the MLC delivery sequence to be modified in real time based on the patient's breathing signal, previously proposed tumor-tracking techniques using a MLC cannot be readily implemented in the clinic today. By using a preprogrammed MLC sequence to handle the required motion, the task for real-time control is greatly simplified. We have developed and tested the pre- programmed MLC sequence and the dose-rate regulation algorithm using lung-cancer patients breathing signals. It has been shown that DRRT can track the tumor with an accuracy of less than 2 mm for a latency of the DRRT system of less than 0.35 s. We also have evaluated the usefulness of guided breathing for DRRT. Since DRRT by its very nature can compensate for breathing-period changes, guided breathing was shown to be unnecessary for real-time tracking when using DRRT. Finally, DRRT uses the existing dose-rate control system that is provided for current linear accelerators. Therefore, DRRT can be achieved with minimal modification of existing technology, and this can shorten substantially the time necessary to establish DRRT in clinical practice.
机译:我们已经开发了一种新颖的实时肿瘤跟踪技术,称为剂量率调节跟踪(DRRT),以补偿由于呼吸引起的肿瘤运动。与其他先前提出的肿瘤跟踪方法不同,该新方法使用预编程的动态多叶准直器(MLC)序列结合实时剂量率控制。该新方案规避了基于MLC的肿瘤追踪中的技术挑战,即基于实时检测到的肿瘤运动实时控制MLC运动。预编程的MLC序列根据呼吸相位,幅度或潮气量来描述肿瘤的运动。治疗期间肿瘤运动的不规则性通过实时调节剂量率来解决,该剂量率可根据需要有效地加快或减慢放射线的传输速度。该方法基于以下事实:动态辐射传输中的所有参数(包括MLC运动)都被控制为累积剂量,而累积剂量又可以通过更改剂量率来加速或减速。由于市售的MLC系统不允许根据患者的呼吸信号实时修改MLC的递送顺序,因此,今天提出的使用MLC的肿瘤追踪技术在当今的临床中尚不容易实现。通过使用预编程的MLC序列来处理所需的运动,可以大大简化实时控制任务。我们已经开发并测试了使用肺癌患者呼吸信号的预编程MLC序列和剂量率调节算法。已经显示,对于DRRT系统的等待时间小于0.35 s,DRRT可以以小于2 mm的精度跟踪肿瘤。我们还评估了引导呼吸对DRRT的有用性。由于DRRT本质上可以补偿呼吸周期的变化,因此在使用DRRT进行实时跟踪时,无需进行引导呼吸。最后,DRRT使用为当前的线性加速器提供的现有剂量率控制系统。因此,只需对现有技术进行最小程度的修改即可实现DRRT,这可以大大缩短在临床实践中建立DRRT所需的时间。

著录项

  • 作者

    Han-Oh, Yeonju Sarah.;

  • 作者单位

    The George Washington University.;

  • 授予单位 The George Washington University.;
  • 学科 Physics Radiation.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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