Optimization of Alanine Measurements for Fast and Accurate Dosimetry in FLASH Radiation Therapy

被引:22
|
作者
Gondre, Maude [1 ]
Jorge, Patrik Goncalves [1 ]
Vozenin, Marie-Catherine [2 ,3 ]
Bourhis, Jean [2 ,3 ]
Bochud, Francois [1 ]
Bailat, Claude [1 ]
Moeckli, Raphael [1 ]
机构
[1] Lausanne Univ Hosp, Inst Radiat Phys, Lausanne, Switzerland
[2] Lausanne Univ Hosp, Radiooncol Dept, Lausanne, Switzerland
[3] Univ Lausanne, Lausanne, Switzerland
关键词
ELECTRON-BEAM DOSIMETRY;
D O I
10.1667/RR15568.1
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
FLASH radiation therapy (FLASH-RT) reference dosimetry to obtain traceability, repeatability and stability of irradiations cannot be performed with conventional dosimetric methods, such as monitor chambers or ionization chambers. Until now, only passive dosimeters have provided the necessary dosimetric data. Alanine dosimetry is accurate; however, to be used for FLASH-RT in biological experiments and for clinical transfer to humans, the reading time needs to be reduced, while preserving a maximum deviation to the reference of +/- 2%. Optimization of alanine dosimetry was based on the acquisition of electron paramagnetic resonance (EPR) spectra with a Bruker spectrometer. Reading parameters such as the conversion time, the number of scans, the time constant, the microwave power and the modulation amplitude of the magnetic field were optimized as a trade-off between the signal-to-noise ratio (SNR) and the reading time of one measurement using the reference 10.1 Gy alanine pellet. After optimizing the parameters, we compared the doses measured with alanine pellets up to 100 Gy with the reference doses, and then determined the number of measurements necessary to get a difference lower than +/- 2%. A low-dose alanine pellet of 4.9 Gy was also measured to evaluate the quality of the optimization for doses lower than 10 Gy. The optimization of the Bruker default parameters made it possible to reduce the reading time for one measurement from 5.6 to 2.6 min. That reduction was not at the cost of the SNR because it was kept comparable to the default parameters. Three measurements were enough to obtain a maximum dose deviation to the reference of 1.8% for the range of 10-100 Gy. The total reading time for the three measurements was 7.8 min (3 x 2.6 min). For lower doses such as 4.9 Gy, three measurements led to a deviation greater than 5%. By increasing the number of measurements to five, the average difference to the reference dose was reduced to less than 5% with a total reading time increased to 13.0 min. For doses between 10 Gy and 100 Gy, the optimized acquisition parameters made it possible to keep the average differences between the reference and the measured doses below +/- 2%, for a reading time of 7.8 min. This enabled an accurate and fast dose determination for biological preparations as part of FLASH-beam irradiations. (C) 2020 by Radiation Research Society
引用
收藏
页码:573 / 579
页数:7
相关论文
共 50 条
  • [21] BEST IN PHYSICS (THERAPY): Ionized Radiation Acoustic Imaging (iRAI) for In-Vivo FLASH Dosimetry
    Sunbul, N. Ba
    Oraiqat, I.
    Zhang, W.
    Clarke, S.
    Matuszak, M.
    Pozzi, S.
    El Naqa, I.
    MEDICAL PHYSICS, 2020, 47 (06) : E294 - E294
  • [22] Dose measurements in heterogeneous media using alanine film dosimetry
    Osterås, B
    Hole, E
    Olsen, D
    Malinen, E
    RADIOTHERAPY AND ONCOLOGY, 2005, 76 : S205 - S206
  • [23] Radiation Induced Acoustic Dosimetry of Electron Flash Radiotherapy
    Bjegovic, K.
    Sun, L.
    Pandey, P. K.
    Gonzalez, G.
    Vozenin, M. C.
    Limoli, C.
    Xiang, L.
    MEDICAL PHYSICS, 2024, 51 (10) : 7749 - 7749
  • [24] Electronic dosimetry in radiation therapy
    Rosenfeld, Anatoly B.
    RADIATION MEASUREMENTS, 2006, 41 : S134 - S153
  • [25] Advances in radiation therapy dosimetry
    Paliwal, Bhudatt
    Tewatia, Dinesh
    JOURNAL OF MEDICAL PHYSICS, 2009, 34 (03) : 108 - 116
  • [26] FILM DOSIMETRY IN RADIATION THERAPY
    FEHRENTZ, D
    ZUNTER, F
    STRAHLENTHERAPIE, 1968, 135 (03) : 301 - &
  • [27] Radiation therapy dosimetry system
    Rivera-Montalvo, T.
    APPLIED RADIATION AND ISOTOPES, 2014, 83 : 204 - 209
  • [28] Techniques for radiation measurements: Microdosimetry and dosimetry
    Waker, A. J.
    RADIATION PROTECTION DOSIMETRY, 2006, 122 (1-4) : 369 - 373
  • [29] ALANINE DOSIMETRY AS THE REFERENCE DOSIMETRIC SYSTEM IN ACCELERATOR RADIATION ENVIRONMENTS
    CONINCKX, F
    SCHONBACHER, H
    BARTOLOTTA, A
    ONORI, S
    ROSATI, A
    APPLIED RADIATION AND ISOTOPES, 1989, 40 (10-12) : 977 - 983