Targeting MRS-Defined Dominant Intraprostatic Lesions with Inverse-Planned High Dose Rate Brachytherapy

Abstract

A combination of MRI/MRSI is used to define the distribution of Dominant Intraprostatic Lesions (DIL) within the prostate. This information is used to perform dose escalation of the DIL without compromising the dose coverage of the prostate and the protection to the urethra, rectum, and bladder for prostate cancer patients treated with High Dose Rate (HDR) brachytherapy. The multi-image fusion process has been presented at national meetings during this period. The steps and criteria involved in the series of image fusions and in the planning and verification of the dose delivery process are presented. Information from one image data set to another in the series of MRS > MRI > CT < CBCT can be accurately transferred and used for the planning and verification of the dose delivery during prostate HDR brachytherapy. Final CHR approval was obtained in 2008 and patient enrollment has begun. So far, 10 patients were treated with HDR brachytherapy with a DIL boost level ranging from 0 to 30%, using the previously established class solution for the set of parameters used by the inverse planning in order to boost the dominant intra-prostatic lesion (DIL) defined by MRI/MRSI. The DIL dose was significantly increased without any violation of standard dosimetric index requirements.

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Document Details

Document Type
Technical Report
Publication Date
Jun 01, 2010
Accession Number
ADA554551

Entities

People

  • I-chow Hsu
  • Jean Pouliot
  • John Kurhanewicz
  • Sue Noworelski

Organizations

  • University of California, San Francisco

Tags

DTIC Thesaurus Topics

  • Algorithms
  • Anatomy
  • Data Sets
  • Department Of Defense
  • Diseases And Disorders
  • Dose Rate
  • Image Registration
  • Magnetic Resonance
  • Magnetic Resonance Imaging
  • Neoplasms
  • Oncology
  • Prostate
  • Prostate Cancer
  • Radiation Oncology
  • Radiotherapy
  • Therapy
  • X-Ray Computed Tomography

Fields of Study

  • Medicine
  • Physics

Readers

  • Medical Imaging.
  • Theoretical Analysis.