Abstract ID: 41 Consequences of patient heterogeneities for intermediate-energy sources in post-implant assessment of prostate brachytherapy treatment plans. (October 2017)
- Record Type:
- Journal Article
- Title:
- Abstract ID: 41 Consequences of patient heterogeneities for intermediate-energy sources in post-implant assessment of prostate brachytherapy treatment plans. (October 2017)
- Main Title:
- Abstract ID: 41 Consequences of patient heterogeneities for intermediate-energy sources in post-implant assessment of prostate brachytherapy treatment plans
- Authors:
- Famulari, Gabriel
Soisson, Emilie
Duclos, Marie
Enger, Shirin A - Abstract:
- Abstract : Purpose: Recent studies have identified and proposed gamma emitting radionuclides ( 75 Se, 169 Yb, 153 Gd) with intermediate energy (50 keV < E < 200 keV) as an alternative to 192 Ir for HDR brachytherapy. The impact of tissue composition and density on the treatment plan quality was studied in a retrospective evaluation for a prostate cancer patient using a range of high- and intermediate-energy brachytherapy sources: 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd. Materials and methods: Post implant treatment plans were simulated with a Geant4-based Monte Carlo dose calculation engine, BrachySource, coupled to a column-generation based optimizer, for a prostate brachytherapy case. The patient was treated with a brachytherapy boost with a dose of 15 Gy in a single fraction. Simulations were performed using 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd as the active cores of the source. The plans were independently approved by two radiation oncologists. Two MC calculation protocols were performed for each radionuclide: (1) dose calculations for which patient anatomy is modelled as unit density water and (2) dose calculations for which patient anatomy is modelled with accurate chemical composition of tissues and densities are obtained using the HU values from CT scan. Results: With 90% of the planning target volume (PTV) receiving over 15 Gy, plans can reduce the PTV V150 to 19.8%, 18.0%, 18.5%, 13.7% and 11.6% for 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd, respectively,Abstract : Purpose: Recent studies have identified and proposed gamma emitting radionuclides ( 75 Se, 169 Yb, 153 Gd) with intermediate energy (50 keV < E < 200 keV) as an alternative to 192 Ir for HDR brachytherapy. The impact of tissue composition and density on the treatment plan quality was studied in a retrospective evaluation for a prostate cancer patient using a range of high- and intermediate-energy brachytherapy sources: 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd. Materials and methods: Post implant treatment plans were simulated with a Geant4-based Monte Carlo dose calculation engine, BrachySource, coupled to a column-generation based optimizer, for a prostate brachytherapy case. The patient was treated with a brachytherapy boost with a dose of 15 Gy in a single fraction. Simulations were performed using 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd as the active cores of the source. The plans were independently approved by two radiation oncologists. Two MC calculation protocols were performed for each radionuclide: (1) dose calculations for which patient anatomy is modelled as unit density water and (2) dose calculations for which patient anatomy is modelled with accurate chemical composition of tissues and densities are obtained using the HU values from CT scan. Results: With 90% of the planning target volume (PTV) receiving over 15 Gy, plans can reduce the PTV V150 to 19.8%, 18.0%, 18.5%, 13.7% and 11.6% for 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd, respectively, without sacrificing the urethral D10, the bladder V75 and the rectum V75 . In general, dose homogeneity within the PTV increased with decreasing average photon energy. The inclusion of tissue composition and density corrections resulted in a reduction of the PTV D90 (urethral D10 ) by 0.0% (0.0%), 0.8% (0.7%), 1.8% (1.6%), 3.0% (4.7%) and 4.5% (4.1%) for 60 Co, 192 Ir, 75 Se, 169 Yb, and 153 Gd, respectively. Conclusion: Intermediate-energy sources have the potential to increase dose homogeneity within the PTV while reducing hot spots in the urethra, bladder, and rectum. This work shows the importance of accurate MC-based treatment planning engine, which can account for tissue composition and heterogeneities, for the dosimetry of intermediate-energy sources. … (more)
- Is Part Of:
- Physica medica. Volume 42(2017)Supplement 1
- Journal:
- Physica medica
- Issue:
- Volume 42(2017)Supplement 1
- Issue Display:
- Volume 42, Issue 1 (2017)
- Year:
- 2017
- Volume:
- 42
- Issue:
- 1
- Issue Sort Value:
- 2017-0042-0001-0000
- Page Start:
- 8
- Page End:
- Publication Date:
- 2017-10
- Subjects:
- Medical physics -- Periodicals
Biophysics -- Periodicals
Biophysics -- Periodicals
Imagerie médicale -- Périodiques
Radiothérapie -- Périodiques
Rayons X -- Sécurité -- Mesures -- Périodiques
Physique -- Périodiques
Médecine -- Périodiques
610.153 - Journal URLs:
- http://www.sciencedirect.com/science/journal/11201797 ↗
http://www.clinicalkey.com/dura/browse/journalIssue/11201797 ↗
http://www.clinicalkey.com.au/dura/browse/journalIssue/11201797 ↗
http://www.elsevier.com/journals ↗
http://www.physicamedica.com ↗ - DOI:
- 10.1016/j.ejmp.2017.09.021 ↗
- Languages:
- English
- ISSNs:
- 1120-1797
- Deposit Type:
- Legaldeposit
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- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 6475.070000
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