Literature DB >> 10394395

RBE, reference RBE and clinical RBE: applications of these concepts in hadron therapy.

A Wambersie1.   

Abstract

Introduction of heavy particles (hadrons) into radiation therapy aims at improving the physical selectivity of the irradiation (e.g. proton beams), or the radiobiological differential effect (e.g. fast neutrons), or both (e.g. heavy-ion beams). Each of these new therapy modalities requires several types of information before prescribing safely the doses to patients, as well as for recording and reporting the treatments: (i) absorbed dose measured in a homogeneous phantom in reference conditions; (ii) dose distribution computed at the level of the target volume(s) and the normal tissues at risk; (iii) radiation quality from which a RBE evaluation could be predicted and (iv) RBE measured on biological systems or derived from clinical observation. In hadron therapy, the RBE of the different beams raises specific problems. For fast neutrons, the RBE varies within wide limits (about 2 to 5) depending on the neutron energy spectrum, dose, and biological system. For protons, the RBE values range between smaller limits (about 1.0 to 1.2). A clinical benefit can thus not be expected from RBE differences. However, the proton RBE problem cannot be ignored since dose differences of about 5% can be detected clinically in some cases. The situation is most complex with heavy ions since RBE variations are at least as large as for fast neutrons, as a function of particle type and energy, dose and biological system. In addition, RBE varies with depth. Radiation quality thus has to be taken into account when prescribing and reporting a treatment. This can be done in different ways: (a) description of the method of beam production; (b) computed LET spectra and/or measured microdosimetric spectra at the points clinically relevant; (c) RBE determination. The most relevant RBE data are those obtained for late tolerance of normal tissues at 2 Gy per fraction ("reference RBE"). The "clinical RBE" selected by the radiation oncologist when prescribing the treatment will be close to the reference RBE, but other factors (such as heterogeneity in dose distribution) may influence the selection of the clinical RBE. Combination of microdosimetric data and experimental RBE values improves the confidence in both sets of data.

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Year:  1999        PMID: 10394395     DOI: 10.1007/bf03038886

Source DB:  PubMed          Journal:  Strahlenther Onkol        ISSN: 0179-7158            Impact factor:   3.621


  9 in total

1.  Biological intercomparisons of neutron beams used for radiotherapy generated by p(+)-->Be in hospital-based cyclotrons.

Authors:  E J Hall; M Astor; D J Brenner
Journal:  Br J Radiol       Date:  1992-01       Impact factor: 3.039

2.  Microdosimetric specification of radiation quality in neutron radiation therapy.

Authors:  H G Menzel; P Pihet; A Wambersie
Journal:  Int J Radiat Biol       Date:  1990-04       Impact factor: 2.694

3.  RBE variation between fast neutron beams as a function of energy. Intercomparison involving 7 neutrontherapy facilities.

Authors:  J Gueulette; M Beauduin; V Grégoire; S Vynckier; B M De Coster; M Octave-Prignot; A Wambersie; K Strijkmans; A De Schrijver; S El-Akkad; L Böhm; J P Slabbert; D T Jones; R Maughan; J Onoda; M Yudelev; A T Porter; W E Powers; R Sabattier; N Breteau; A Courdi; N Brassart; P Chauvel
Journal:  Bull Cancer Radiother       Date:  1996

4.  RBE variation as a function of depth in the 200-MeV proton beam produced at the National Accelerator Centre in Faure (South Africa).

Authors:  J Gueulette; L Böhm; B M De Coster; S Vynckier; M Octave-Prignot; A N Schreuder; J E Symons; D T Jones; A Wambersie; P Scalliet
Journal:  Radiother Oncol       Date:  1997-03       Impact factor: 6.280

5.  What degree of accuracy is required and can be achieved in photon and neutron therapy?

Authors:  B J Mijnheer; J J Battermann; A Wambersie
Journal:  Radiother Oncol       Date:  1987-03       Impact factor: 6.280

6.  Changes in relative biological effectiveness with depth of the Clatterbridge neutron therapy beam.

Authors:  S Hornsey; R Myers; C J Parnell; D E Bonnett; S W Blake; D K Bewley
Journal:  Br J Radiol       Date:  1988-11       Impact factor: 3.039

7.  RBE in fast neutron therapy and in boron neutron capture therapy. A useful concept or a misuse?

Authors:  A Wambersie; H G Menzel
Journal:  Strahlenther Onkol       Date:  1993-01       Impact factor: 3.621

8.  Radiobiological intercomparison of p(45)+Be and p(65)+Be neutron beams for lung tolerance in mice after single and fractionated irradiation.

Authors:  V Grégoire; M Beauduin; J Gueulette; B M De Coster; M Octave-Prignot; S Vynckier; A Wambersie
Journal:  Radiat Res       Date:  1993-01       Impact factor: 2.841

9.  Measurements of radiobiological effectiveness in the 85 MeV proton beam produced at the cyclotron CYCLONE of Louvain-la-Neuve, Belgium.

Authors:  J Gueulette; V Grégoire; M Octave-Prignot; A Wambersie
Journal:  Radiat Res       Date:  1996-01       Impact factor: 2.841

  9 in total
  7 in total

1.  Therapy-resistant cancer stem cells have differing sensitivity to photon versus proton beam radiation.

Authors:  Xiaochun Zhang; Steven H Lin; Bingliang Fang; Michael Gillin; Radhe Mohan; Joe Y Chang
Journal:  J Thorac Oncol       Date:  2013-12       Impact factor: 15.609

Review 2.  Proton Beam Therapy for Pediatric Brain Tumor.

Authors:  Masashi Mizumoto; Yoshiko Oshiro; Tetsuya Yamamoto; Hidehiro Kohzuki; Hideyuki Sakurai
Journal:  Neurol Med Chir (Tokyo)       Date:  2017-06-09       Impact factor: 1.742

3.  Determining RBE for development of lung fibrosis induced by fractionated irradiation with carbon ions utilizing fibrosis index and high-LET BED model.

Authors:  Cheng Zhou; Bleddyn Jones; Mahmoud Moustafa; Bing Yang; Stephan Brons; Liji Cao; Ying Dai; Christian Schwager; Ming Chen; Oliver Jaekel; Longhua Chen; Juergen Debus; Amir Abdollahi
Journal:  Clin Transl Radiat Oncol       Date:  2018-11-02

Review 4.  The Current State of Radiotherapy for Pediatric Brain Tumors: An Overview of Post-Radiotherapy Neurocognitive Decline and Outcomes.

Authors:  Nicholas Major; Neal A Patel; Josiah Bennett; Ena Novakovic; Dana Poloni; Mickey Abraham; Nolan J Brown; Julian L Gendreau; Ronald Sahyouni; Joshua Loya
Journal:  J Pers Med       Date:  2022-06-27

5.  Basics of particle therapy II: relative biological effectiveness.

Authors:  Jinhyun Choi; Jin Oh Kang
Journal:  Radiat Oncol J       Date:  2012-03-31

6.  Enhanced radiobiological effects at the distal end of a clinical proton beam: in vitro study.

Authors:  Yoshitaka Matsumoto; Taeko Matsuura; Mami Wada; Yusuke Egashira; Teiji Nishio; Yoshiya Furusawa
Journal:  J Radiat Res       Date:  2014-05-13       Impact factor: 2.724

7.  Multiparametric radiobiological assays show that variation of X-ray energy strongly impacts relative biological effectiveness: comparison between 220 kV and 4 MV.

Authors:  Vincent Paget; Mariam Ben Kacem; Morgane Dos Santos; Mohamed A Benadjaoud; Frédéric Soysouvanh; Valérie Buard; Tarlet Georges; Aurélie Vaurijoux; Gaëtan Gruel; Agnès François; Olivier Guipaud; Fabien Milliat
Journal:  Sci Rep       Date:  2019-10-04       Impact factor: 4.379

  7 in total

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