Literature DB >> 26501639

Effect of the magnetic field on positron range using GATE for PET-MR.

Afroditi Eleftheriou1,2, Charalampos Tsoumpas1, Ottavia Bertolli1, Εfstathios Stiliaris2,3.   

Abstract

Entities:  

Year:  2014        PMID: 26501639      PMCID: PMC4545895          DOI: 10.1186/2197-7364-1-S1-A50

Source DB:  PubMed          Journal:  EJNMMI Phys        ISSN: 2197-7364


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Positron range is an important spatial resolution limiting factor in PET. When imaging inside a magnetic field the positron range is non-uniformly affected. A decrease of the positron range is expected in the directions perpendicular to the direction of the magnetic field, whereas no variation is expected in the direction of the magnetic field. Monte Carlo simulations were performed to validate these expectations. GATE simulation package [1] (version 5.0.0) was used to calculate the annihilation distribution of positrons in water, lung and rib bone. A point source placed in the centre of a spherical phantom was simulated. Six different positron emitters were used: 11C, 13 N, 15O, 18F, 68Ga, 82Rb. The simulations were performed without and with static magnetic field set in the axial direction for various field strengths. In total 105 annihilation events were simulated per configuration and the annihilation coordinates were obtained from the Geant4 output and analysed with Matlab. Previous investigations indicated an increase of the positron range along the axis of the magnetic field [2, 3]. As an attempt to confirm the previous findings, the effect of the magnetic field on the positron emission range was investigated. GATE simulations of the positron annihilation process indicated a general reduction of the mean positron range inside the phantom volume, specifically for the high energy emitters 82Rb and 68Ga. The evaluation of the positron annihilation distance across the directions perpendicular to the magnetic field showed a reduction of the mean positron range, as theoretically expected [4, 5]. These results are compared and found in accordance with the theoretical expectations [2, 3]. Contrary to previously published results [2, 3], no increase in the positron range along the direction of the magnetic field is detected. The results of this study can be used to improve positron range correction algorithms for simultaneous PET-MR acquisition.
  2 in total

1.  GATE: a simulation toolkit for PET and SPECT.

Authors:  S Jan; G Santin; D Strul; S Staelens; K Assié; D Autret; S Avner; R Barbier; M Bardiès; P M Bloomfield; D Brasse; V Breton; P Bruyndonckx; I Buvat; A F Chatziioannou; Y Choi; Y H Chung; C Comtat; D Donnarieix; L Ferrer; S J Glick; C J Groiselle; D Guez; P F Honore; S Kerhoas-Cavata; A S Kirov; V Kohli; M Koole; M Krieguer; D J van der Laan; F Lamare; G Largeron; C Lartizien; D Lazaro; M C Maas; L Maigne; F Mayet; F Melot; C Merheb; E Pennacchio; J Perez; U Pietrzyk; F R Rannou; M Rey; D R Schaart; C R Schmidtlein; L Simon; T Y Song; J M Vieira; D Visvikis; R Van de Walle; E Wieërs; C Morel
Journal:  Phys Med Biol       Date:  2004-10-07       Impact factor: 3.609

2.  Analytical positron range modelling in heterogeneous media for PET Monte Carlo simulation.

Authors:  Wencke Lehnert; Marie-Claude Gregoire; Anthonin Reilhac; Steven R Meikle
Journal:  Phys Med Biol       Date:  2011-05-10       Impact factor: 3.609

  2 in total
  1 in total

1.  Monte Carlo Simulations of the GE Signa PET/MR for Different Radioisotopes.

Authors:  Paulo R R V Caribé; Stefaan Vandenberghe; André Diogo; David Pérez-Benito; Nikos Efthimiou; Charlotte Thyssen; Yves D'Asseler; Michel Koole
Journal:  Front Physiol       Date:  2020-09-15       Impact factor: 4.566

  1 in total

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