Adaptive Radiation Therapy in the Treatment of Lung Cancer: An Overview of the Current State of the Field

工作流程 放射治疗 医学物理学 肺癌 适应(眼睛) 放射治疗计划 计算机科学 医学 质量保证 限制 风险分析(工程) 心理学 肿瘤科 外科 工程类 神经科学 病理 外部质量评估 数据库 机械工程
作者
Huzaifa Piperdi,Daniella Portal,Shane S. Neibart,Ning J. Yue,Salma K. Jabbour,Meral Reyhan
出处
期刊:Frontiers in Oncology [Frontiers Media]
卷期号:11: 770382-770382 被引量:41
标识
DOI:10.3389/fonc.2021.770382
摘要

Lung cancer treatment is constantly evolving due to technological advances in the delivery of radiation therapy. Adaptive radiation therapy (ART) allows for modification of a treatment plan with the goal of improving the dose distribution to the patient due to anatomic or physiologic deviations from the initial simulation. The implementation of ART for lung cancer is widely varied with limited consensus on who to adapt, when to adapt, how to adapt, and what the actual benefits of adaptation are. ART for lung cancer presents significant challenges due to the nature of the moving target, tumor shrinkage, and complex dose accumulation because of plan adaptation. This article presents an overview of the current state of the field in ART for lung cancer, specifically, probing topics of: patient selection for the greatest benefit from adaptation, models which predict who and when to adapt plans, best timing for plan adaptation, optimized workflows for implementing ART including alternatives to re-simulation, the best radiation techniques for ART including magnetic resonance guided treatment, algorithms and quality assurance, and challenges and techniques for dose reconstruction. To date, the clinical workflow burden of ART is one of the major reasons limiting its widespread acceptance. However, the growing body of evidence demonstrates overwhelming support for reduced toxicity while improving tumor dose coverage by adapting plans mid-treatment, but this is offset by the limited knowledge about tumor control. Progress made in predictive modeling of on-treatment tumor shrinkage and toxicity, optimizing the timing of adaptation of the plan during the course of treatment, creating optimal workflows to minimize staffing burden, and utilizing deformable image registration represent ways the field is moving toward a more uniform implementation of ART.
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