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  3. Simultaneous optimization of photons and electrons for mixed beam radiotherapy.

Simultaneous optimization of photons and electrons for mixed beam radiotherapy.

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DOI
10.7892/boris.105285
Publisher DOI
10.1088/1361-6560/aa70c5
PubMed ID
28467321
Abstract
The aim of this work is to develop and investigate an inverse treatment planning process (TPP) for mixed beam radiotherapy (MBRT) capable of performing simultaneous optimization of photon and electron apertures. A simulated annealing based direct aperture optimization (DAO) is implemented to perform simultaneous optimization of photon and electron apertures, both shaped with the photon multileaf collimator (pMLC). Validated beam models are used as input for Monte Carlo dose calculations. Consideration of photon pMLC transmission during DAO and a weight re-optimization of the apertures after deliverable dose calculation are utilized to efficiently reduce the differences between optimized and deliverable dose distributions. The TPP for MBRT is evaluated for an academic situation with a superficial and an enlarged PTV in the depth, a left chest wall case including the internal mammary chain and a squamous cell carcinoma case. Deliverable dose distributions of MBRT plans are compared to those of modulated electron radiotherapy (MERT), photon IMRT and if available to those of clinical VMAT plans. The generated MBRT plans dosimetrically outperform the MERT, photon IMRT and VMAT plans for all investigated situations. For the clinical cases of the left chest wall and the squamous cell carcinoma, the MBRT plans cover the PTV similarly or more homogeneously than the VMAT plans, while OARs are spared considerably better with average reductions of the mean dose to parallel OARs and D 2% to serial OARs by 54% and 26%, respectively. Moreover, the low dose bath expressed as V 10% to normal tissue is substantially reduced by up to 45% compared to the VMAT plans. A TPP for MBRT including simultaneous optimization is successfully implemented and the dosimetric superiority of MBRT plans over MERT, photon IMRT and VMAT plans is demonstrated for academic and clinical situations including superficial targets with and without deep-seated part.
Date Issued
2017-06-26
Publication Type
Article
Subject(s)
600 Technology > 610 Medicine & health
Language(s)
en
Author(s)
Mueller, S
Fix, Michael  orcid-logo
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Joosten, Andreas  
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Henzen, Dominik  orcid-logo
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Frei, Daniel  
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Volken, Werner  
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Küng, Reto  
Universitätsklinik für Radio-Onkologie  
Aebersold, Daniel Matthias  orcid-logo
Universitätsklinik für Radio-Onkologie  
Stampanoni, M F M
Manser, Peter  
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Additional Credits
Universitätsklinik für Radio-Onkologie, Medizinische Strahlenphysik  
Universitätsklinik für Radio-Onkologie  
Journal
Physics in medicine and biology
Publisher
Institute of Physics Publishing IOP
ISSN
0031-9155
Access(Rights)
restricted
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