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DESCRIPTION (provided by applicant): 4D Visible Human Modeling for Radiation Dosimetry We propose a multidisciplinary research to solve problems associated with patient respiratory motions during radiation therapy by further extending the Visible Human image dataset into the 4th dimension (4D) with motion-simulating capabilities. Radiation therapy is one of the most effective methods of cancer management. In external beam radiation treatment, a lethal radiation dose is delivered through precisely conformed external radiation to the tumor while sparing the adjacent healthy tissues. However, the current paradigm is based on an assumption that both the tumor location and shape are known and remain unchanged during the course of radiation delivery. Such a favorable rigid-body relationship does not exist in anatomical sites such as the thoracic cavity and the abdomen, owing predominantly to respiratory motions. Consequently, the radiation oncologists currently have to use less aggressive treatment strategies with a large dose margin to tolerate potential targeting errors. We propose to develop physics-based, motion-simulating virtual human models that will provide a unique insight into the management of respiratory motion during radiation treatment, thus allowing for more aggressive and effective targeting and radiation delivery. A multidisciplinary research team with collective expertise in radiation dosimetry, biomechanical modeling and clinical radiation oncology is assembled to achieve the following Specific Aims: 1) To combine the 3D adult male anatomical model developed from high-resolution VHP cryosection image data with physics-based tissue deformation models to simulate respiratory motions. 2.)To apply this first physics-based, 4D motion-simulating virtual-human to the study of complex radiation interactions in tissues and dose distribution patterns for various radiation delivery strategies using advanced Monte Carlo simulations, 3).To critically evaluate the degrees to which the more realistic representations of internal organs will improve the planned and delivered treatment doses. 4).To establish an internet-based information-sharing resource on virtual-human motion simulation and radiation dosimetry.
期刊论文(14)
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会议论文
DOI: 10.1088/0031-9155/57/9/2441
发表时间: 2012-05-07
期刊: Physics in medicine and biology
影响因子: 3.5
作者: [Ding A, Mille MM, Liu T, Caracappa PF, Xu XG]
通讯作者: Xu XG
DOI: 10.1088/0031-9155/53/19/017
发表时间: 2008-10-07
期刊: Physics in medicine and biology
影响因子: 3.5
作者: [Hegenbart L, Na YH, Zhang JY, Urban M, Xu XG]
通讯作者: Xu XG
Tradeoffs for assuming rigid target motion in Mlc-based real time target tracking radiotherapy: a dosimetric and radiobiological analysis.
基于 Mlc 的实时目标跟踪放射治疗中假设刚性目标运动的权衡:剂量测定和放射生物学分析。
DOI: 10.1177/153303461000900209
发表时间: 2010
期刊: Technology in cancer research & treatment
影响因子: 2.8
作者: [Roland,T, Shi,C, Liu,Y, Crownover,R, Mavroidis,P, Papanikolaou,N]
通讯作者: Papanikolaou,N
Incorporating system latency associated with real-time target tracking radiotherapy in the dose prediction step.
在剂量预测步骤中纳入与实时目标跟踪放射治疗相关的系统延迟。
DOI: 10.1088/0031-9155/55/9/015
发表时间: 2010
期刊: Physics in medicine and biology
影响因子: 3.5
作者: [Roland,Teboh, Mavroidis,Panayiotis, Shi,Chengyu, Papanikolaou,Nikos]
通讯作者: Papanikolaou,Nikos
9
    ARCHER - An Extremely Fast Medical Radiation Dose Computing Software
    • 批准号:
      9358719
    • 项目类别:
    • 资助金额:
      $56.23万
    • 财政年份:
      2015
    • 负责人:
      Xie George Xu
    • 依托单位:
    ARCHER - An Extremely Fast Medical Radiation Dose Computing Software
    • 批准号:
      9340330
    • 项目类别:
    • 资助金额:
      $42.95万
    • 财政年份:
      2015
    • 负责人:
      Xie George Xu
    • 依托单位:
    GPU-Based Monte Carlo Software for Computing CT Imaging Doses
    • 批准号:
      8667944
    • 项目类别:
    • 资助金额:
      $62.21万
    • 财政年份:
      2012
    • 负责人:
      Xie George Xu
    • 依托单位:
    GPU-Based Monte Carlo Software for Computing CT Imaging Doses
    • 批准号:
      8518100
    • 项目类别:
    • 资助金额:
      $61.31万
    • 财政年份:
      2012
    • 负责人:
      Xie George Xu
    • 依托单位:
    海外基金