Literature DB >> 23718599

On the use of a single-fiber multipoint plastic scintillation detector for 192Ir high-dose-rate brachytherapy.

François Therriault-Proulx1, Sam Beddar, Luc Beaulieu.   

Abstract

PURPOSE: The goal of this study was to prove the feasibility of using a single-fiber multipoint plastic scintillation detector (mPSD) as an in vivo verification tool during (192)Ir high-dose-rate brachytherapy treatments.
METHODS: A three-point detector was built and inserted inside a catheter-positioning template placed in a water phantom. A hyperspectral approach was implemented to discriminate the different optical signals composing the light output at the exit of the single collection optical fiber. The mPSD was tested with different source-to-detector positions, ranging from 1 to 5 cm radially and over 10.5 cm along the longitudinal axis of the detector, and with various integration times. Several strategies for improving the accuracy of the detector were investigated. The device's accuracy in detecting source position was also tested.
RESULTS: Good agreement with the expected doses was obtained for all of the scintillating elements, with average relative differences from the expected values of 3.4 ± 2.1%, 3.0 ± 0.7%, and 4.5 ± 1.0% for scintillating elements from the distal to the proximal. A dose threshold of 3 cGy improved the general accuracy of the detector. An integration time of 3 s offered a good trade-off between precision and temporal resolution. Finally, the mPSD measured the radioactive source positioning uncertainty to be no more than 0.32 ± 0.06 mm. The accuracy and precision of the detector were improved by a dose-weighted function combining the three measurement points and known details about the geometry of the detector construction.
CONCLUSIONS: The use of a mPSD for high-dose-rate brachytherapy dosimetry is feasible. This detector shows great promise for development of in vivo applications for real-time verification of treatment delivery.

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Year:  2013        PMID: 23718599      PMCID: PMC3663866          DOI: 10.1118/1.4803510

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  32 in total

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3.  Technical note: removing the stem effect when performing Ir-192 HDR brachytherapy in vivo dosimetry using plastic scintillation detectors: a relevant and necessary step.

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4.  Evaluation of linear array MOSFET detectors for in vivo dosimetry to measure rectal dose in HDR brachytherapy.

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5.  A phantom study of an in vivo dosimetry system using plastic scintillation detectors for real-time verification of 192Ir HDR brachytherapy.

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9.  In vivo thermoluminescence dosimetry dose verification of transperineal 192Ir high-dose-rate brachytherapy using CT-based planning for the treatment of prostate cancer.

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Review 1.  A review of recent advances in optical fibre sensors for in vivo dosimetry during radiotherapy.

Authors:  S O'Keeffe; D McCarthy; P Woulfe; M W D Grattan; A R Hounsell; D Sporea; L Mihai; I Vata; G Leen; E Lewis
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Review 2.  Review of strategies for MRI based reconstruction of endocavitary and interstitial applicators in brachytherapy of cervical cancer.

Authors:  José Richart; Vicente Carmona-Meseguer; Teresa García-Martínez; Antonio Herreros; Antonio Otal; Santiago Pellejero; Ana Tornero-López; José Pérez-Calatayud
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Review 3.  In vivo dosimetry: trends and prospects for brachytherapy.

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Review 4.  Optical fibre sensors: their role in in vivo dosimetry for prostate cancer radiotherapy.

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Journal:  Cancer Nanotechnol       Date:  2016-10-18

Review 5.  In vivo dosimetry in brachytherapy: Requirements and future directions for research, development, and clinical practice.

Authors:  Gabriel P Fonseca; Jacob G Johansen; Ryan L Smith; Luc Beaulieu; Sam Beddar; Gustavo Kertzscher; Frank Verhaegen; Kari Tanderup
Journal:  Phys Imaging Radiat Oncol       Date:  2020-09-28

6.  Characterization of an Innovative Detector Based on Scintillating Fiber for Personalized Computed Tomography Dosimetry.

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  6 in total

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