| Literature DB >> 27580698 |
Jong In Park1,2,3, Sung Whan Ha2,4, Jung-In Kim4,5, Hyunseok Lee1,2, Jaegi Lee1,2, Il Han Kim4,3, Sung-Joon Ye6,7,8,9,10.
Abstract
BACKGROUND: For breast cancer patients who require electron boost energies between 6 and 9 MeV, an energy degraders (ED) in the 9 MeV beamline was specially designed and manufactured to increase the skin dose of 6 MeV and to reduce the penetration depth of 9 MeV beams.Entities:
Keywords: Breast boost irradiation; Electron energy degrader; Linear accelerator; Monte Carlo simulation
Mesh:
Year: 2016 PMID: 27580698 PMCID: PMC5007734 DOI: 10.1186/s13014-016-0686-7
Source DB: PubMed Journal: Radiat Oncol ISSN: 1748-717X Impact factor: 3.481
Fig. 1Construction of energy degrader. Construction of the energy degrader (ED) for 7 MeV beam investigated using the Monte Carlo simulations. The shape of ED was a truncated cone attached on the plane plate and the central thickness of ED was 1.0 cm. a A picture of the optimized energy degrader placed on the plane plate of the lowermost scraper for 10 × 10 cm2 cone. It was secured in the cutout insert. b The top view of ED; the parameter r is the radius of circle on the upper layer. c The side view of ED; T is the thickness for upper layer and T is the thickness of bottom layer. Ratio of two layer’s thickness varied with design-to-design
Parameterized values to optimize the energy degrader. Parameterized values to optimize the energy degrader for 10 × 10 cm2 and 15 × 15 cm2 cone size. r is the radius of top layer. T t is the top layer thickness. T b is the bottom layer thickness. T t + T b is equal to 1.0 cm
| 10 × 10 cm2 cone | 15 × 15 cm2 cone | ||||||
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| ED-Pa | - | - | 1.0 | ED-Pa | - | - | 1.0 |
| ED-1 | 2 | 0.7 | 0.3 | ED-1 | 2 | 0.6 | 0.4 |
| ED-2 | 2 | 0.6 | 0.4 | ED-2 | 3 | 0.6 | 0.4 |
| ED-3 | 2 | 0.5 | 0.5 | ED-3 | 6 | ` | 0.4 |
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| 2 | 0.4 | 0.6 |
| 4 | 0.3 | 0.7 |
| ED-5 | 2 | 0.3 | 0.7 | ED-5 | 6 | 0.3 | 0.7 |
aED-P is a Lucite® slab plate, thickness of which is1.0 cm
Highlighted bold ED-4 was selected as an optimal design
Measured cutout factors for 7 MeV electron beam. Measured cutout factors for 7 MeV electron beam (reference: measured output for 9 MeV beam of 10 × 10 cm2 cone; A/P: area to perimeter)
| A/P ratio | |||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|
| Energy | Cone size (cm2) | 0.75 | 1.00 | 1.25 | 1.50 | 1.75 | 2.00 | 2.25 | 2.50 | 3.00 | 3.75 |
| 7 MeV | 10 × 10 | 0.335 | 0.490 | 0.623 | 0.738 | 0.805 | 0.858 | 0.870 | 0.882 | - | - |
| 15 × 15 | - | - | - | - | - | 0.900 | 0.922 | 0.946 | 0.963 | 0.972 | |
| 9 MeV | 10 × 10 | 0.903 | 0.952 | 0.983 | 1.000 | 1.005 | 1.008 | 1.004 | 1.000 | - | - |
| 15 × 15 | - | - | - | - | - | 1.003 | 1.005 | 1.007 | 1.004 | 0.996 | |
Fig. 2The setup picture of in-vivo dosimetry for patient 2. NanoDot™ optically stimulated luminescent (OSLD) dosimeters (Landauer Inc., Glenwood, IL) were used to measure the irradiated dose. The 15 × 15 cm2 cone was used to irradiate the target which size was 10 cm (superior-to-inferior) × 11 cm (Anterior-to-inferior). OSLD3 and OSLD4 are numbered 1 and 2 in the figure. OSLD3 and OSLD4 were located at the 2 cm and 3 cm from the isocenter, respectively
Fig. 3Comparison of the measured and calculated beam characteristics curves for 9 MeV beam. A comparison of the measured and calculated relative central-axis depth dose curves in water for 9 MeV beam of (a) 10 × 10 cm2 and (b) 15 × 15 cm2 cones. Measured and calculated cross-beam profiles at the depth of dose maximum in water for 9 MeV electron beam of (c) 10 × 10 cm2 and (d) 15 × 15 cm2 cones. Solid lines indicate measurements data with an ionization chamber (CC13). Squares indicate the calculated data from Monte Carlo simulations. The energy and lateral spread of incident electron beam for MC simulations were 9.85 MeV and 0.13 cm FWHM of Gaussian distribution, respectively
Fig. 4MC beam profiles of the 7 MeV electron beams for six designs. MC beam profiles of 10 × 10 cm2 cone were obtained (a) d max and (b) R for six designs of the energy degrader (ED). MC beam profiles of 15 × 15 cm2 cone were obtained at (c) d max and (d) R for six designs of the ED. An optimal design for 7 MeV beam was selected by considering uniformity of profile at d max and R . ED-4 was the final design for 10 × 10 cm2 and 15 × 15 cm2 cones
Fig. 5Comparison of the measured and calculated beam characteristics for new 7 MeV beam. A comparison of the measured and calculated relative central-axis depth dose curves in water for 7 MeV beam of (a) 10 × 10 cm2 and (b) 15 × 15 cm2 cones. Measured and calculated cross-beam profiles at the depth of dose maximum in water for 7 MeV electron beam of (c) 10 × 10 cm2 and (d) 15 × 15 cm2 cones. Solid lines indicate measurements data with an ionization chamber (CC13). Squares indicate the calculated data from Monte Carlo simulations
Fig. 6Comparison of measured depth-dose curves of electron beams. Comparison of measured depth-dose curves for new 7 MeV (bold solid), 9 MeV (solid), 6 MeV (dashed) and 9 MeV with 1 cm bolus (dotted) for 10 × 10 cm2 cone. Reduced penetration depth and enhanced skin doses for 7 MeV beam were shown in this figure
Central-axis depth dose characteristics for 10 × 10 cm2 cone. Central-axis depth dose characteristics for 7 MeV, 9 MeV, and 9 MeV with 1 cm bolus of 10 × 10 cm2 cone. X con indicates X-ray contamination that is extracted from R p plus 2 cm
| Nominal energy (MeV) | Surface dose (%) |
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| E0 (MeV) |
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| 7 | 88.8 | 1.16 | 1.83 | 2.07 | 2.59 | 3.35 | 6.03 | 1.3 |
| 9 | 80.7 | 2.05 | 2.74 | 2.99 | 3.54 | 4.39 | 8.25 | 1.2 |
| 9 with bolus | 91.3 | 1.05 | 1.74 | 1.99 | 2.54 | 3.33 | 5.92 | - |
Central-axis depth dose characteristics for 15 × 15 cm2 cone. Central-axis depth dose characteristics for 7 MeV, 9 MeV, and 9 MeV with 1 cm bolus of 15 × 15 cm2 cone. X con indicates X-ray contamination that is extracted from R p plus 2 cm
| Nominal energy (MeV) | Surface dose (%) |
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| 7 | 89.7 | 1.12 | 1.74 | 1.99 | 2.52 | 3.31 | 5.87 | 1.1 |
| 9 | 80.5 | 2.03 | 2.72 | 2.98 | 3.55 | 4.38 | 8.27 | 1.1 |
| 9 with bolus | 91.1 | 1.03 | 1.72 | 1.98 | 2.55 | 3.32 | 5.94 | - |
Output factors for 7 MeV electron beam. Output factors for 7 MeV electron beam (reference: measured output for 9 MeV beam of 10 × 10 cm2 cone)
| Cone (cm2) | Output factor calculated | Output factor measured | Difference (%) |
|---|---|---|---|
| 10 × 10 | 0.888 | 0.882 | 0.6 |
| 15 × 15 | 0.980 | 0.972 | 0.8 |
In vivo dose results. In vivo doses of 7 MeV beam measured with optically stimulated luminescence dosimeters
| OSLD number | SSD (cm) | Cone size (cm2) | Measure Dose (cGy) | |
|---|---|---|---|---|
| Patient 1 | 1 | 100 | 10 | 156 |
| 2 | 153 | |||
| Patient 2 | 3 | 100 | 15 | 152 |
| 4 | 139 | |||
| Patient 3 | 5 | 105 | 15 | 152 |
| 6 | 152 |