Purdy J A
Radiation Oncology Center, Mallinckrodt Institute of Radiology, Washington University School of Medicine, St. Louis, MO 63110, USA.
Semin Oncol. 1997 Dec;24(6):655-71.
Radiation therapy treatment planning and delivery capabilities have changed dramatically over the past decade and are in the process of changing even more dramatically over the next few years. Three-dimensional radiation treatment planning systems, once the purview of university research groups, are now commercially available and are rapidly being implemented in clinics around the world. These developments have prompted medical accelerator manufacturers to use advanced computer technology to produce treatment delivery systems capable of precise shaping of dose distributions via computer-controlled multileaf collimators (MLC). The latest development exploits the use of fields in which the beam intensity is varied optimally within the portal boundary and is referred to it as intensity modulated radiation therapy. This approach is capable of generating extremely conformal dose distributions including concave isodose volumes that provide specific avoidance of sensitive normal structures within complex treatment geometries. These new capabilities change the kinds of treatments that are possible, and that changes the process with which treatment planning and treatment delivery are performed. These technological advances show significant potential for improving both the quality of radiation therapy and/or improving the efficiency with which radiation therapy can be planned and delivered.
在过去十年中,放射治疗的治疗计划和实施能力发生了巨大变化,并且在未来几年内还将发生更为显著的变化。三维放射治疗计划系统,曾经是大学研究团队的专属领域,如今已实现商业化,并正在全球各地的诊所迅速得到应用。这些进展促使医用加速器制造商利用先进的计算机技术来生产治疗实施系统,该系统能够通过计算机控制的多叶准直器(MLC)精确塑造剂量分布。最新的进展是利用在射野边界内光束强度进行最佳变化的射野,并将其称为调强放射治疗。这种方法能够生成极其适形的剂量分布,包括凹形等剂量体积,从而在复杂的治疗几何形状中实现对敏感正常组织的特定避让。这些新能力改变了可行的治疗类型,进而改变了治疗计划和治疗实施的流程。这些技术进步在提高放射治疗质量和/或提高放射治疗计划与实施效率方面显示出巨大潜力。