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Design and production of 3D printed bolus for electron radiation therapy.
- Source :
-
Journal of applied clinical medical physics [J Appl Clin Med Phys] 2014 Jul 08; Vol. 15 (4), pp. 4831. Date of Electronic Publication: 2014 Jul 08. - Publication Year :
- 2014
-
Abstract
- This is a proof-of-concept study demonstrating the capacity for modulated electron radiation therapy (MERT) dose distributions using 3D printed bolus. Previous reports have involved bolus design using an electron pencil beam model and fabrication using a milling machine. In this study, an in-house algorithm is presented that optimizes the dose distribution with regard to dose coverage, conformity, and homogeneity within the planning target volume (PTV). The algorithm takes advantage of a commercial electron Monte Carlo dose calculation and uses the calculated result as input. Distances along ray lines from the distal side of 90% isodose line to distal surface of the PTV are used to estimate the bolus thickness. Inhomogeneities within the calculation volume are accounted for using the coefficient of equivalent thickness method. Several regional modulation operators are applied to improve the dose coverage and uniformity. The process is iterated (usually twice) until an acceptable MERT plan is realized, and the final bolus is printed using solid polylactic acid. The method is evaluated with regular geometric phantoms, anthropomorphic phantoms, and a clinical rhabdomyosarcoma pediatric case. In all cases the dose conformity are improved compared to that with uniform bolus. For geometric phantoms with air or bone inhomogeneities, the dose homogeneity is markedly improved. The actual printed boluses conform well to the surface of complex anthropomorphic phantoms. The correspondence of the dose distribution between the calculated synthetic bolus and the actual manufactured bolus is shown. For the rhabdomyosarcoma patient, the MERT plan yields a reduction of mean dose by 38.2% in left kidney relative to uniform bolus. MERT using 3D printed bolus appears to be a practical, low-cost approach to generating optimized bolus for electron therapy. The method is effective in improving conformity of the prescription isodose surface and in sparing immediately adjacent normal tissues.
- Subjects :
- Child
Foot radiation effects
Head radiation effects
Humans
Imaging, Three-Dimensional
Monte Carlo Method
Phantoms, Imaging
Quality Assurance, Health Care
Radiotherapy Dosage
Radiotherapy, Intensity-Modulated
Electrons therapeutic use
Radiotherapy instrumentation
Radiotherapy Planning, Computer-Assisted
Rhabdomyosarcoma radiotherapy
Subjects
Details
- Language :
- English
- ISSN :
- 1526-9914
- Volume :
- 15
- Issue :
- 4
- Database :
- MEDLINE
- Journal :
- Journal of applied clinical medical physics
- Publication Type :
- Academic Journal
- Accession number :
- 25207410
- Full Text :
- https://doi.org/10.1120/jacmp.v15i4.4831