呼吸运动时肝脏靶体积的剂量验证。

Q3 Biochemistry, Genetics and Molecular Biology Australasian Physical & Engineering Sciences in Medicine Pub Date : 2019-06-01 Epub Date: 2019-05-02 DOI:10.1007/s13246-019-00737-6
Emma Dyce, Dean Cutajar, Peter Metcalfe, Simon Downes
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引用次数: 0

摘要

在放射治疗期间,呼吸运动对腹部目标的剂量有显著影响。由于大的呼吸运动和肺-肝界面不同的组织密度,膈肌附近肝脏肿瘤的准确治疗变得复杂。本研究旨在评估在没有门控技术的情况下,使用被动呼吸监测向上部肝脏肿瘤提供剂量的准确性,用于一系列治疗技术。为了模拟肺和肝的解剖结构,我们设计并制造了一个内部呼吸假体。该模型由相邻的肺和肝等效材料板和模拟呼吸运动的凸轮驱动系统组成。CC04电离室和Gafchromic EBT3薄膜分别进行了点剂量和剂量面测量。使用Elekta Monaco治疗计划系统(TPS)对适形、体积调节电弧治疗(VMAT)和强度调节放射治疗(IMRT)技术的呼气期研究集进行计划计算,呼吸频率为8、14和23 bpm。经分析确认,部门内部目前使用的合格交付协议是合适的。实验还确定VMAT是一种可行的替代技术,用于治疗发生呼吸运动的上肝脏病变,优于IMRT。此外,这些测量结果强调了在这些病例中进行呼吸管理的必要性。由于呼吸超过计划的边缘造成的位移可能导致临床靶体积的覆盖范围缩小,肺部的剂量比预期的要高得多。
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Dose verification for liver target volumes undergoing respiratory motion.

Respiratory motion has a significant impact on dose delivered to abdominal targets during radiotherapy treatment. Accurate treatment of liver tumours adjacent to the diaphragm is complicated by large respiratory movement, as well as differing tissue densities at the lung-liver interface. This study aims to evaluate the accuracy of dose delivered to superior liver tumours using passive respiratory monitoring, in the absence of gating technology, for a range of treatment techniques. An in-house respiratory phantom was designed and constructed to simulate the lung and liver anatomy. The phantom consisted of adjacent slabs of lung and liver equivalent materials and a cam drive system to emulate respiratory motion. A CC04 ionisation chamber and Gafchromic EBT3 film were used to perform point dose and dose plane measurements respectively. Plans were calculated using an Elekta Monaco treatment planning system (TPS) on exhale phase study sets for conformal, volume modulated arc therapy (VMAT) and intensity modulated radiation therapy (IMRT) techniques, with breathing rates of 8, 14 and 23 bpm. Analysis confirmed the conformal delivery protocol currently used for this site within the department is suitable. The experiments also determined that VMAT is a viable alternative technique for treatment of superior liver lesions undergoing respiratory motion and was superior to IMRT. Furthermore, the measurements highlighted the need for respiratory management in these cases. Displacements due to respiration exceeding planned margins could result in reduced coverage of the clinical target volume and much higher doses to the lung than anticipated.

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来源期刊
CiteScore
2.00
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0.00%
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审稿时长
6-12 weeks
期刊介绍: Australasian Physical & Engineering Sciences in Medicine (APESM) is a multidisciplinary forum for information and research on the application of physics and engineering to medicine and human physiology. APESM covers a broad range of topics that include but is not limited to: - Medical physics in radiotherapy - Medical physics in diagnostic radiology - Medical physics in nuclear medicine - Mathematical modelling applied to medicine and human biology - Clinical biomedical engineering - Feature extraction, classification of EEG, ECG, EMG, EOG, and other biomedical signals; - Medical imaging - contributions to new and improved methods; - Modelling of physiological systems - Image processing to extract information from images, e.g. fMRI, CT, etc.; - Biomechanics, especially with applications to orthopaedics. - Nanotechnology in medicine APESM offers original reviews, scientific papers, scientific notes, technical papers, educational notes, book reviews and letters to the editor. APESM is the journal of the Australasian College of Physical Scientists and Engineers in Medicine, and also the official journal of the College of Biomedical Engineers, Engineers Australia and the Asia-Oceania Federation of Organizations for Medical Physics.
期刊最新文献
Acknowledgment of Reviewers for Volume 35 Acknowledgment of Reviewers for Volume 34 A comparison between EPSON V700 and EPSON V800 scanners for film dosimetry. Nanodosimetric understanding to the dependence of the relationship between dose-averaged lineal energy on nanoscale and LET on ion species. EPSM 2019, Engineering and Physical Sciences in Medicine : 28-30 October 2019, Perth, Australia.
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