Literature DB >> 35391775

Prospective Evaluation of Prostate and Organs at Risk Segmentation Software for MRI-based Prostate Radiation Therapy.

Jeremiah W Sanders1, Rajat J Kudchadker1, Chad Tang1, Henry Mok1, Aradhana M Venkatesan1, Howard D Thames1, Steven J Frank1.   

Abstract

The segmentation of the prostate and surrounding organs at risk (OARs) is a necessary workflow step for performing dose-volume histogram analyses of prostate radiation therapy procedures. Low-dose-rate prostate brachytherapy (LDRPBT) is a curative prostate radiation therapy treatment that delivers a single fraction of radiation over a period of days. Prior studies have demonstrated the feasibility of fully convolutional networks to segment the prostate and surrounding OARs for LDRPBT dose-volume histogram analyses. However, performance evaluations have been limited to measures of global similarity between algorithm predictions and a reference. To date, the clinical use of automatic segmentation algorithms for LDRPBT has not been evaluated, to the authors' knowledge. The purpose of this work was to assess the performance of fully convolutional networks for prostate and OAR delineation on a prospectively identified cohort of patients who underwent LDRPBT by using clinically relevant metrics. Thirty patients underwent LDRPBT and were imaged with fully balanced steady-state free precession MRI after implantation. Custom automatic segmentation software was used to segment the prostate and four OARs. Dose-volume histogram analyses were performed by using both the original automatically generated contours and the physician-refined contours. Dosimetry parameters of the prostate, external urinary sphincter, and rectum were compared without and with the physician refinements. This study observed that physician refinements to the automatic contours did not significantly affect dosimetry parameters. Keywords: MRI, Neural Networks, Radiation Therapy, Radiation Therapy/Oncology, Genital/Reproductive, Prostate, Segmentation, Dosimetry Supplemental material is available for this article. © RSNA, 2022. 2022 by the Radiological Society of North America, Inc.

Entities:  

Keywords:  Dosimetry; Genital/Reproductive; MRI; Neural Networks; Prostate; Radiation Therapy; Radiation Therapy/Oncology; Segmentation

Year:  2022        PMID: 35391775      PMCID: PMC8980936          DOI: 10.1148/ryai.210151

Source DB:  PubMed          Journal:  Radiol Artif Intell        ISSN: 2638-6100


  21 in total

1.  Interobserver variability leads to significant differences in quantifiers of prostate implant adequacy.

Authors:  W Robert Lee; Mack Roach; Jeff Michalski; Brian Moran; David Beyer
Journal:  Int J Radiat Oncol Biol Phys       Date:  2002-10-01       Impact factor: 7.038

2.  Machine Segmentation of Pelvic Anatomy in MRI-Assisted Radiosurgery (MARS) for Prostate Cancer Brachytherapy.

Authors:  Jeremiah W Sanders; Gary D Lewis; Howard D Thames; Rajat J Kudchadker; Aradhana M Venkatesan; Teresa L Bruno; Jingfei Ma; Mark D Pagel; Steven J Frank
Journal:  Int J Radiat Oncol Biol Phys       Date:  2020-07-04       Impact factor: 7.038

3.  Use of magnetic resonance imaging in low-dose-rate and high-dose-rate prostate brachytherapy from diagnosis to treatment assessment: Defining the knowledge gaps, technical challenges, and barriers to implementation.

Authors:  S J Frank; F Mourtada; J Crook; C Ménard
Journal:  Brachytherapy       Date:  2017-03-23       Impact factor: 2.362

4.  American Brachytherapy Society consensus guidelines for transrectal ultrasound-guided permanent prostate brachytherapy.

Authors:  Brian J Davis; Eric M Horwitz; W Robert Lee; Juanita M Crook; Richard G Stock; Gregory S Merrick; Wayne M Butler; Peter D Grimm; Nelson N Stone; Louis Potters; Anthony L Zietman; Michael J Zelefsky
Journal:  Brachytherapy       Date:  2012 Jan-Feb       Impact factor: 2.362

5.  Pulse sequence considerations for simulation and postimplant dosimetry of prostate brachytherapy.

Authors:  Jingfei Ma; Marinus A Moerland; Aradhana M Venkatesan; Tharakeswara K Bathala; Rajat J Kudchadker; Kristy K Brock; Steven J Frank
Journal:  Brachytherapy       Date:  2017-01-04       Impact factor: 2.362

6.  Predictors of urinary toxicity with MRI-assisted radiosurgery for low-dose-rate prostate brachytherapy.

Authors:  David Boyce-Fappiano; Tharakeswara K Bathala; Rong Ye; Dario Pasalic; Olsi Gjyshi; Todd A Pezzi; Sonal S Noticewala; Gwendolyn J McGinnis; Sean Maroongroge; Deborah A Kuban; Quynh-Nhu Nguyen; Sean E McGuire; Karen E Hoffman; Seungtaek Choi; Chad Tang; Rajat J Kudchadker; Steven J Frank
Journal:  Brachytherapy       Date:  2020-07-15       Impact factor: 2.362

7.  AAPM recommendations on dose prescription and reporting methods for permanent interstitial brachytherapy for prostate cancer: report of Task Group 137.

Authors:  Ravinder Nath; William S Bice; Wayne M Butler; Zhe Chen; Ali S Meigooni; Vrinda Narayana; Mark J Rivard; Yan Yu
Journal:  Med Phys       Date:  2009-11       Impact factor: 4.071

Review 8.  Magnetic resonance image guided brachytherapy.

Authors:  Kari Tanderup; Akila N Viswanathan; Christian Kirisits; Steven J Frank
Journal:  Semin Radiat Oncol       Date:  2014-07       Impact factor: 5.934

9.  Prostate post-implant dosimetry: interobserver variability in seed localisation, contouring and fusion.

Authors:  Marisol De Brabandere; Peter Hoskin; Karin Haustermans; Frank Van den Heuvel; Frank-André Siebert
Journal:  Radiother Oncol       Date:  2012-07-31       Impact factor: 6.280

10.  Fully Balanced SSFP Without an Endorectal Coil for Postimplant QA of MRI-Assisted Radiosurgery (MARS) of Prostate Cancer: A Prospective Study.

Authors:  Jeremiah W Sanders; Aradhana M Venkatesan; Chad A Levitt; Tharakeswara Bathala; Rajat J Kudchadker; Chad Tang; Teresa L Bruno; Christine Starks; Edwin Santiago; Michelle Wells; Carl P Weaver; Jingfei Ma; Steven J Frank
Journal:  Int J Radiat Oncol Biol Phys       Date:  2020-09-24       Impact factor: 7.038

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