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TH‐AB‐BRB‐05: Using a Research Real‐Time Control Interface to Go Beyond Dynamic MLC Tracking

机译:TH-AB-BRB-05:使用研究实时控制接口超出动态MLC跟踪

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Current state‐of‐the art digital C‐arm medical linear accelerators are capable of delivering radiation treatments with high level of automation, which affords coordinated motions of gantry, couch, and multileaf collimator (MLC) with dose rate modulations. The new machine capacity has shown the potential to bring substantially improved radiation dosimetry and/or delivery efficiency to many challenging diseases. Combining an integrated beam orientation optimization algorithm with automated machine navigation, markedly improved dose conformity has been achieved using 4ρ therapy. Trajectory modulated radiation therapy (TMAT) can be used to deliver highly conformal dose to partial breast or to carve complex dose distribution for therapy involving extended volumes such as total marrow and total lymph node treatment. Dynamic electron arc radiotherapy (DEAR) not only overcomes the deficiencies of conventional electron therapy in dose conformity and homogeneity but also achieves so without patient‐specific shields. The combination of MLC and couch tracking provides improved motion management of thoracic and abdominal tumors. A substantial body of work has been done in these technological advances for clinical translation. The proposed symposium will provide a timely review of these exciting opportunities. Learning Objectives: 1. Recognize the potential of using digitally controlled linacs for clinically significant improvements in delivered dose distributions for various treatment sites. 2. Identify existing approaches to treatment planning, optimization and delivery for treatment techniques utilizing the advanced functions of digital linacs and venues for further development and improvement. 3. Understand methods for testing and validating delivery system performance. 4. Identify tools available on current delivery systems for implementation and control for such treatments. 5. Obtain the update in clinical applications, trials and regulatory approval. K. Sheng, NIH U19AI067769, NIH R43CA183390, NIH R01CA188300, Varian Medical Systems V. Yu, Varian Medical Systems, AAPM Summer Undergraduate Fellowship, NSF graduate fellowship S. Nill, Elekta AB. Cancer Research UK under Programme C33589/A19727, NIHR Biomedical Research Centre at The Royal Marsden and The Institute of Cancer Research.
机译:目前最先进的数字C形臂医用线性促进剂能够提供具有高自动化水平的辐射处理,其提供龙门,沙发和多叶和MLC)的协调运动,具有剂量率调节。新的机器容量表明可能为许多挑战性疾病带来显着提高的辐射剂量和/或输送效率。将集成光束方向优化算法与自动化机导航相结合,使用4ρ疗法实现了显着改善的剂量符合性。轨迹调制的放射治疗(TMAT)可用于将高度保形剂量递送至部分乳房或致癌剂量分布,用于治疗涉及延长的体积,如全骨髓和总淋巴结处理。动态电子弧放疗(亲爱的)不仅克服了常规电子治疗剂量符合性和均匀性的缺陷,而且还达到了患者特异性盾牌。 MLC和沙发跟踪的组合提供了改进的胸腔和腹部肿瘤的运动管理。在这些技术进步的临床翻译中已经完成了大量工作。拟议研讨会将及时审查这些令人兴奋的机会。学习目标:1。识别使用数码控制的LINACS用于各种治疗位点的临床上显着改进的潜力。 2.利用数字线圈和场地的先进功能,确定处理规划,优化和交付的现有方法,用于进一步发展和改进。 3.了解测试和验证交付系统性能的方法。 4.识别当前交付系统上可用的工具,以实现和控制此类治疗。 5.获取临床应用,试验和监管批准的更新。 K. Sheng,NIH U19AI067769,NIH R43CA183390,NIH R01CA188300,​​Varian Medical Systems V. yu,Varian Medical Systems,AAPM夏季本科团契,NSF毕业生奖学金S.Nill,Elekta AB。癌症研究英国计划C33589 / A19727,NIHR生物医学研究中心,皇家马斯登和癌症研究所。

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