Literature DB >> 12030556

Optimization of intensity-modulated very high energy (50-250 MeV) electron therapy.

C Yeboah1, G A Sandison, V Moskvin.   

Abstract

This work evaluates the potential of very high energy (50-250 MeV) electron beams for dose conformation and identifies those variables that influence optimized dose distributions for this modality. Intensity-modulated plans for a prostate cancer model were optimized as a function of the importance factors, beam energy and number of energy bins, number of beams, and the beam orientations. A trial-and-error-derived constellation of importance factors for target and sensitive structures to achieve good conformal dose distributions was 500, 50, 10 and I for the target, rectum, bladder and normal tissues respectively. Electron energies greater than 100 MeV were found to be desirable for intensity-modulated very high energy electron therapy (VHEET) of prostate cancer. Plans generated for lower energy beams had relatively poor conformal dose distributions about the target region and delivered high doses to sensitive structures. Fixed angle beam treatments utilizing a large number of fields in the range 9-21 provided acceptable plans. Using more than 21 beams at fixed gantry angles had an insignificant effect on target coverage, but resulted in an increased dose to sensitive structures and an increased normal tissue integral dose. Minor improvements in VHEET plans utilizing a 'small' number (< or =9) of beams may be achieved if, in addition to intensity modulation, energy modulation is implemented using a small number (< or =3) of beam energies separated by 50 to 100 MeV. Rotation therapy provided better target dose homogeneity but unfortunately resulted in increased rectal dose, bladder dose and normal tissue integral dose relative to the 21-field fixed angle treatment plan. Modulation of the beam energy for rotation therapy had no beneficial consequences on the optimized dose distributions. Lastly, selection of beam orientations influenced the optimized treatment plan even when a large number of beams (approximately 15) were employed.

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Year:  2002        PMID: 12030556     DOI: 10.1088/0031-9155/47/8/305

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  3 in total

1.  Ultra-high dose rate radiation production and delivery systems intended for FLASH.

Authors:  Jonathan Farr; Veljko Grilj; Victor Malka; Srinivasan Sudharsan; Marco Schippers
Journal:  Med Phys       Date:  2022-05-05       Impact factor: 4.506

2.  Focused very high-energy electron beams as a novel radiotherapy modality for producing high-dose volumetric elements.

Authors:  K Kokurewicz; E Brunetti; G H Welsh; S M Wiggins; M Boyd; A Sorensen; A J Chalmers; G Schettino; A Subiel; C DesRosiers; D A Jaroszynski
Journal:  Sci Rep       Date:  2019-07-25       Impact factor: 4.379

3.  Toward an effective use of laser-driven very high energy electrons for radiotherapy: Feasibility assessment of multi-field and intensity modulation irradiation schemes.

Authors:  Luca Labate; Daniele Palla; Daniele Panetta; Federico Avella; Federica Baffigi; Fernando Brandi; Fabio Di Martino; Lorenzo Fulgentini; Antonio Giulietti; Petra Köster; Davide Terzani; Paolo Tomassini; Claudio Traino; Leonida A Gizzi
Journal:  Sci Rep       Date:  2020-10-14       Impact factor: 4.379

  3 in total

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