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Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer

Publication ,  Journal Article
Kim, Y; Modrick, JM; Pennington, EC; Kim, Y
Published in: Journal of Applied Clinical Medical Physics
March 2016

The objective of this work is to present commissioning procedures to clinically implement a three‐dimensional (3D), image‐based, treatment‐planning system (TPS) for high‐dose‐rate (HDR) brachytherapy (BT) for gynecological (GYN) cancer. The physical dimensions of the GYN applicators and their values in the virtual applicator library were varied by 0.4 mm of their nominal values. Reconstruction uncertainties of the titanium tandem and ovoids (T&O) were less than 0.4 mm on CT phantom studies and on average between 0.8‐1.0 mm on MRI when compared with X‐rays. In‐house software, HDRCalculator, was developed to check HDR plan parameters such as independently verifying active tandem or cylinder probe length and ovoid or cylinder size, source calibration and treatment date, and differences between average Point A dose and prescription dose. Dose‐volume histograms were validated using another independent TPS. Comprehensive procedures to commission volume optimization algorithms and process in 3D image‐based planning were presented. For the difference between line and volume optimizations, the average absolute differences as a percentage were 1.4% for total reference air KERMA (TRAK) and 1.1% for Point A dose. Volume optimization consistency tests between versions resulted in average absolute differences in 0.2% for TRAK and 0.9 s (0.2%) for total treatment time. The data revealed that the optimizer should run for at least 1 min in order to avoid more than 0.6% dwell time changes. For clinical GYN T&O cases, three different volume optimization techniques (graphical optimization, pure inverse planning, and hybrid inverse optimization) were investigated by comparing them against a conventional Point A technique. End‐to‐end testing was performed using a T&O phantom to ensure no errors or inconsistencies occurred from imaging through to planning and delivery. The proposed commissioning procedures provide a clinically safe implementation technique for 3D image‐based TPS for HDR BT for GYN cancer.PACS number(s): 87.55.D‐

Duke Scholars

Published In

Journal of Applied Clinical Medical Physics

DOI

EISSN

1526-9914

ISSN

1526-9914

Publication Date

March 2016

Volume

17

Issue

2

Start / End Page

405 / 426

Publisher

Wiley

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 5105 Medical and biological physics
  • 3208 Medical physiology
  • 1116 Medical Physiology
  • 1103 Clinical Sciences
  • 0299 Other Physical Sciences
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Kim, Y., Modrick, J. M., & Pennington, E. C. (2016). Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer. Journal of Applied Clinical Medical Physics, 17(2), 405–426. https://doi.org/10.1120/jacmp.v17i2.5818
Kim, Yongbok, Joseph M. Modrick, Edward C. Pennington, and Yusung Kim. “Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer.” Journal of Applied Clinical Medical Physics 17, no. 2 (March 2016): 405–26. https://doi.org/10.1120/jacmp.v17i2.5818.
Kim Y, Modrick JM, Pennington EC. Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer. Journal of Applied Clinical Medical Physics. 2016 Mar;17(2):405–26.
Kim, Yongbok, et al. “Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer.” Journal of Applied Clinical Medical Physics, vol. 17, no. 2, Wiley, Mar. 2016, pp. 405–26. Crossref, doi:10.1120/jacmp.v17i2.5818.
Kim Y, Modrick JM, Pennington EC. Commissioning of a 3D image‐based treatment planning system for high‐dose‐rate brachytherapy of cervical cancer. Journal of Applied Clinical Medical Physics. Wiley; 2016 Mar;17(2):405–426.

Published In

Journal of Applied Clinical Medical Physics

DOI

EISSN

1526-9914

ISSN

1526-9914

Publication Date

March 2016

Volume

17

Issue

2

Start / End Page

405 / 426

Publisher

Wiley

Related Subject Headings

  • Nuclear Medicine & Medical Imaging
  • 5105 Medical and biological physics
  • 3208 Medical physiology
  • 1116 Medical Physiology
  • 1103 Clinical Sciences
  • 0299 Other Physical Sciences