Very high-energy electron dose calculation using the Fermi-Eyges theory of multiple scattering and a simplified pencil beam model

被引:4
作者
Ronga, Maria Grazia [1 ,2 ]
Deut, Umberto [1 ]
Bonfrate, Anthony [1 ]
De Marzi, Ludovic [1 ,3 ,4 ]
机构
[1] PSL Res Univ, Inst Curie, Radiat Oncol Dept, Orsay, France
[2] Thales Avion, Velizy Villacoublay, France
[3] Univ Paris Saclay, PSL Res Univ, Inst Curie, Inserm LITO, Orsay, France
[4] PSL Res Univ, Inst Curie, Radiat Oncol Dept, Campus Univ,Batiment 101, Orsay, France
关键词
Monte Carlo simulations; multiple scattering; pencil beam scanning; very high-energy electrons; RADIOTHERAPY; VHEE;
D O I
10.1002/mp.16697
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
BackgroundVery high-energy electrons (VHEE) radiotherapy, in the energy range of 100-200 MeV is currently considered a promising technique for the future of radiation therapy and could benefit from the promises of ultra-high dose rate FLASH therapy. However, to our knowledge, no analytical calculation models have been tested for this type of application and the approximations proposed for multiple scattering with electron beams have not been extensively evaluated at these high energies.PurposeIn this work, we discuss the derivation of a simple and fast algorithm based on the Fermi-Eyges theory of multiple Coulomb scattering for fast dose calculation for VHEE beams (up to 200 MeV). Similar to the Gaussian pencil beam models used for electron or proton beams, this pencil beam kernel is separated into a central and an off-axis term. Monte Carlo simulations are performed to compare the analytical calculations with simulations and to determine the parametrizations used in the model at the highest electron energies.MethodsThe normalized electron planar fluence distribution is described in water according to the Fermi-Eyges theory of multiple Coulomb scattering and a double Gaussian distribution model. The main quantities used in the model and their calculation (mass angular scattering power, mean energy, range straggling) are discussed and tested for electron energies up to 200 MeV. The TOPAS/Geant4 Monte Carlo (MC) toolkit is used to compare analytical calculations with MC simulations for a theoretical pencil beam irradiation and to find the best parameters describing the range straggling. The model is then tested on a realistic simulation of a pencil beam scanning beamline with treatment field dimensions up to 15 x 15 cm2 and for deep-seated targets.ResultsRadial dose distributions of a pencil beam in water were calculated with the model and compared with the results of a complete Monte Carlo simulation. A good agreement (within 2%/2 mm gamma passing rate superior to 90%, and a mean deviation between calculated and simulated pencil beam radial spread smaller than 0.6 mm) was observed between analytical dose distributions and simulations for energies up to 200 MeV and field sizes up to 15 x 15 cm2.ConclusionsA parameterization of an electron source and an analytical pencil beam model were proposed in this work, thereby allowing a suitable reproduction of the lateral fluence of a VHEE beam and good agreement between calculations and simulated data. Further improvement of the method would require the consideration of a model describing the large-angle scattering of the electrons. The results of this work could support future research into VHEE radiotherapy and might be of interest for use together with VHEE broad beams produced by scanned narrow pencil beams.
引用
收藏
页码:8009 / 8022
页数:14
相关论文
共 42 条
  • [1] RESTRICTED ENERGY-LOSS STRAGGLING AND MULTIPLE-SCATTERING OF ELECTRONS IN MIXED MONTE-CARLO PROCEDURES
    ANDREO, P
    BRAHME, A
    [J]. RADIATION RESEARCH, 1984, 100 (01) : 16 - 29
  • [2] [Anonymous], 1972, ICRU REPORTS, Vos-11, P60, DOI [10.1093/jicru_os11.2.60, DOI 10.1093/JICRU_OS11.2.60]
  • [3] [Anonymous], 1984, ICRU REPORTS, Vos-12, P26, DOI [10.1093/jicru_os12.2.26, DOI 10.1093/JICRU_OS12.2.26]
  • [4] Treatment planning for radiotherapy with very high-energy electron beams and comparison of VHEE and VMAT plans
    Bazalova-Carter, Magdalena
    Qu, Bradley
    Palma, Bianey
    Hardemark, Bjorn
    Hynning, Elin
    Jensen, Christopher
    Maxim, Peter G.
    Loo, Billy W., Jr.
    [J]. MEDICAL PHYSICS, 2015, 42 (05) : 2615 - 2625
  • [5] Comparison of film measurements and Monte Carlo simulations of dose delivered with very high-energy electron beams in a polystyrene phantom
    Bazalova-Carter, Magdalena
    Liu, Michael
    Palma, Bianey
    Dunning, Michael
    McCormick, Doug
    Hemsing, Erik
    Nelson, Janice
    Jobe, Keith
    Colby, Eric
    Koong, Albert C.
    Tantawi, Sami
    Dolgashev, Valery
    Maxim, Peter G.
    Loo, Billy W., Jr.
    [J]. MEDICAL PHYSICS, 2015, 42 (04) : 1606 - 1613
  • [6] MOLIERE THEORY OF MULTIPLE SCATTERING
    BETHE, HA
    [J]. PHYSICAL REVIEW, 1953, 89 (06): : 1256 - 1266
  • [7] Characteristics of very high-energy electron beams for the irradiation of deep-seated targets
    Bohlen, Till Tobias
    Germond, Jean-Francois
    Traneus, Erik
    Bourhis, Jean
    Vozenin, Marie-Catherine
    Bailat, Claude
    Bochud, Francois
    Moeckli, Raphael
    [J]. MEDICAL PHYSICS, 2021, 48 (07) : 3958 - 3967
  • [8] INCLUSION OF ELECTRON RANGE STRAGGLING IN THE FERMI-EYGES MULTIPLE-SCATTERING THEORY
    BRUINVIS, IAD
    MATHOL, WAF
    ANDREO, P
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 1989, 34 (04) : 491 - 507
  • [9] Real-time simulator for designing electron dual scattering foil systems
    Carver, Robert L.
    Hogstrom, Kenneth R.
    Price, Michael J.
    LeBlanc, Justin D.
    Pitcher, Garret M.
    [J]. JOURNAL OF APPLIED CLINICAL MEDICAL PHYSICS, 2014, 15 (06): : 323 - 342
  • [10] MULTIPLE SCATTERING WITH ENERGY LOSS
    EYGES, L
    [J]. PHYSICAL REVIEW, 1948, 74 (10): : 1534 - 1535