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Target Definition in Biologically-Conformal Radiation Therapy.

机译:生物适形放射治疗中的目标定义。

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摘要

In biologically-conformal radiation therapy, or dose painting, functional imaging is used to define biological targets for radiotherapy dose escalation. There is still much uncertainty about which imaging target is optimal for dose painting, and how dose should be prescribed inside the target volume. The goal of this dissertation was to investigate and characterize the properties of different biological imaging methods that make them good or poor candidates to serve as dose painting targets, and to evaluate how dose is likely to be prescribed to target volumes. Using spontaneous sinonasal tumors in canines treated with radiation therapy as research models, we related FDG, FLT, and Cu-ATSM PET uptake---surrogate measures of metabolism, proliferation, and hypoxia, respectively---to radiation resistance using outcome analysis and voxel-wise spatial analysis. We also investigated the similarities and spatio-temporal stability of the different tracer uptake patterns. Overall, we found that FLT-based biomarkers, especially those acquired during the course of radiation therapy, were the best biomarkers at predicting outcome following radiation therapy. Using spatial analysis, we found that all tracers had comparable performances in identifying resistant tumor subvolumes, and that there was large interpatient heterogeneity in how well PET tracer distributions could identify resistant subvolumes. We also demonstrated that spatial distributions of Cu-ATSM and FLT uptake measured during therapy were very similar to those measured at baseline, indicating FLT and Cu-ATSM PET as spatially-robust targets for dose painting. Finally, we demonstrate how FDG, FLT, and Cu-ATSM dose painting prescriptions are likely to be applied in human head-and-neck tumors, and confirm the feasibility of accurately delivering dose painting plans with tomotherapy. Overall, we did not find a single imaging method that stood out as the most promising target for dose painting. Rather, all tracers demonstrated evidence both for and against their use as dose painting targets. However, through these studies, we now have a greater understanding of the characteristics and limitations of dose painting according to different biological targets, which can help guide the development of future dose painting studies.
机译:在生物保形放射治疗或剂量涂装中,功能成像用于定义放射治疗剂量递增的生物学靶标。关于哪个成像目标最适合剂量喷涂,以及在目标体积内应如何规定剂量仍存在很多不确定性。本文的目的是研究和表征不同的生物成像方法的特性,这些特性使它们成为好或不好的候选者可以用作剂量绘画目标,并评估如何为目标体积开出剂量。以放射治疗的犬的自发鼻窦肿瘤为研究模型,我们将FDG,FLT和Cu-ATSM PET摄取(分别作为代谢,增殖和低氧的替代指标)与放射抵抗力相关联,使用结局分析和体素空间分析。我们还研究了不同示踪剂吸收模式的相似性和时空稳定性。总的来说,我们发现基于FLT的生物标志物,尤其是在放射治疗过程中获得的生物标志物,是预测放射治疗结果的最佳生物标志物。使用空间分析,我们发现所有示踪剂在鉴定耐药性肿瘤亚量方面均具有可比的性能,并且患者间的异质性在PET示踪剂分布能够较好地鉴定耐药性亚体积方面也存在很大差异。我们还证明,治疗期间测得的Cu-ATSM和FLT摄取的空间分布与基线时非常相似,这表明FLT和Cu-ATSM PET是剂量涂装的空间稳健目标。最后,我们演示了FDG,FLT和Cu-ATSM剂量绘画处方如何可能应用于人的头颈部肿瘤,并证实了通过tomotherapy准确交付剂量绘画计划的可行性。总体而言,我们没有找到一种能成为剂量喷涂最有希望的目标的成像方法。而是,所有示踪剂均证明了将其用作剂量绘画目标的证据。但是,通过这些研究,我们现在根据不同的生物学目标对剂量涂装的特征和局限有了更深入的了解,这可以帮助指导未来剂量涂装研究的发展。

著录项

  • 作者

    Bradshaw, Tyler J.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Health Sciences Radiology.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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