From new frontiers to new standards of practice: advances in radiotherapy planning and delivery.

James A Purdy
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引用次数: 36

Abstract

Radiation therapy treatment planning and delivery capabilities have changed dramatically since the introduction of three-dimensional treatment planning in the 1980s and continue to change in response to the implementation of new technologies. CT simulation and three-dimensional radiation treatment planning systems have become the standard of practice in clinics around the world. Medical accelerator manufacturers have employed advanced computer technology to produce treatment planning/delivery systems capable of precise shaping of dose distributions via computer-controlled multileaf collimators, in which the beam fluence is varied optimally to achieve the plan prescription. This mode of therapy is referred to as intensity-modulated radiation therapy (IMRT), and is capable of generating extremely conformal dose distributions including concave isodose volumes that provide conformal target volume coverage and avoidance of specific sensitive normal structures. IMRT is rapidly being implemented in clinics throughout the USA. This increasing use of IMRT has focused attention on the need to better account for both intrafraction and interfraction spatial uncertainties, which has helped spur the development of treatment machines with integrated planar and volumetric advanced imaging capabilities. In addition, advances in both anatomical and functional imaging provide improved ability to define the tumor volumes. Advances in all these technologies are occurring at a record pace and again pushing the cutting-edge frontiers of radiation oncology from IMRT to what is now referred to as image-guided IMRT, or simply image-guided radiation therapy (IGRT). A brief overview is presented of these latest advancements in conformal treatment planning and treatment delivery.

从新的领域到新的实践标准:放射治疗计划和交付的进展。
自从20世纪80年代引入三维治疗计划以来,放射治疗的治疗计划和输送能力发生了巨大变化,并随着新技术的实施而继续发生变化。CT模拟和三维放射治疗计划系统已成为世界各地诊所的实践标准。医用加速器制造商已经采用先进的计算机技术来生产治疗计划/输送系统,该系统能够通过计算机控制的多叶准直器精确塑造剂量分布,在该系统中,光束通量的最佳变化以实现计划处方。这种治疗模式被称为调强放射治疗(IMRT),能够产生极其适形的剂量分布,包括凹形等剂量体积,提供适形靶体积覆盖和避免特定敏感正常结构。IMRT正在美国各地的诊所迅速实施。IMRT的使用越来越多,人们关注的焦点是需要更好地解释内偏移和干涉空间的不确定性,这有助于促进具有集成平面和体积先进成像能力的治疗机的发展。此外,解剖和功能成像技术的进步提高了确定肿瘤体积的能力。所有这些技术的进步都在以创纪录的速度发生,并再次推动放射肿瘤学的前沿,从IMRT到现在被称为图像引导IMRT,或简称为图像引导放射治疗(IGRT)。简要概述了这些在适形治疗计划和治疗交付方面的最新进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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