Technical Note: Dose effects of 1.5 T transverse magnetic field on tissue interfaces in MRI-guided radiotherapy

被引:49
|
作者
Chen, Xinfeng [1 ]
Prior, Phil [1 ]
Chen, Guang-Pei [1 ]
Schultz, Christopher J. [1 ]
Li, X. Allen [1 ]
机构
[1] Med Coll Wisconsin, Dept Radiat Oncol, 8701 Watertown Plank Rd, Milwaukee, WI 53226 USA
关键词
MRI-guided radiotherapy; dose effect of magnetic field; tissue interface; MONTE-CARLO; LINEAR-ACCELERATOR; SCANNER; SYSTEM; GPUMCD; IMPACT; IMRT;
D O I
10.1118/1.4959534
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
Purpose: The integration of MRI with a linear accelerator (MR-linac) offers great potential for high-precision delivery of radiation therapy (RT). However, the electron deflection resulting from the presence of a transverse magnetic field (TMF) can affect the dose distribution, particularly the electron return effect (ERE) at tissue interfaces. The purpose of the study is to investigate the dose effects of ERE at air-tissue and lung-tissue interfaces during intensity-modulated radiation therapy (IMRT) planning. Methods: IMRT and volumetric modulated arc therapy (VMAT) plans for representative pancreas, lung, breast, and head and neck (HN) cases were generated following commonly used clinical dose volume (DV) criteria. In each case, three types of plans were generated: (1) the original plan generated without a TMF; (2) the reconstructed plan generated by recalculating the original plan with the presence of a TMF of 1.5 T (no optimization); and (3) the optimized plan generated by a full optimization with TMF = 1.5 T. These plans were compared using a variety of DV parameters, including V-100%, D-95%, DHI [dose heterogeneity index: (D-20%-D-80%)/D-prescription], D-max, and D-1cc in OARs (organs at risk) and tissue interface. All the optimizations and calculations in this work were performed on static data. Results: The dose recalculation under TMF showed the presence of the 1.5 T TMF can slightly reduce V-100% and D-95% for PTV, with the differences being less than 4% for all but one lung case studied. The TMF results in considerable increases in D-max and D-1cc on the skin in all cases, mostly between 10% and 35%. The changes in D-max and D-1cc on air cavity walls are dependent upon site, geometry, and size, with changes ranging up to 15%. The VMAT plans lead to much smaller dose effects from ERE compared to fixed-beam IMRT in pancreas case. When the TMF is considered in the plan optimization, the dose effects of the TMF at tissue interfaces (e.g., air-cavity wall, lung-tissue interfaces, skin) are significantly reduced in most cases. Conclusions: The doses on tissue interfaces can be significantly changed by the presence of a TMF during MR-guided RT when the magnetic field is not included in plan optimization. These changes can be substantially reduced or even eliminated during VMAT/IMRT optimization that specifically considers the TMF, without deteriorating overall plan quality. (C) 2016 American Association of Physicists in Medicine.
引用
收藏
页码:4797 / 4802
页数:6
相关论文
共 50 条
  • [21] Feasibility of MRI Guided Proton Therapy: Magnetic Field Dose Effects
    Raaymakers, B. W.
    Raaijmakers, A. J. E.
    Lagendijk, J. J. W.
    MEDICAL PHYSICS, 2008, 35 (06)
  • [22] Transcranial magnetic resonance-guided focused ultrasound surgery at 1.5T: a technical note
    Gagliardo, Cesare
    Midiri, Massimo
    Cannella, Roberto
    Napoli, Alessandro
    Wragg, Paul
    Collura, Giorgio
    Marrale, Maurizio
    Bartolotta, Tommaso Vincenzo
    Catalano, Carlo
    Lagalla, Roberto
    NEURORADIOLOGY JOURNAL, 2019, 32 (02): : 132 - 138
  • [23] Integrating a MRI scanner with a 6 MV radiotherapy accelerator: dose deposition in a transverse magnetic field
    Raaymakers, BW
    Raaijmakers, AJE
    Kotte, ANTJ
    Jette, D
    Lagendijk, JJW
    PHYSICS IN MEDICINE AND BIOLOGY, 2004, 49 (17): : 4109 - 4118
  • [24] Monte Carlo modeling of a 60Co MRI-guided radiotherapy system on Geant4 and experimental verification of dose calculation under a magnetic field of 0.35 T
    Okamoto, Hiroyuki
    Nishioka, Shie
    Iijima, Kotaro
    Nakamura, Satoshi
    Sakasai, Tatsuya
    Miura, Yuki
    Takemori, Mihiro
    Nakayama, Hiroki
    Morishita, Yuichiro
    Shimizu, Morihito
    Abe, Yoshihisa
    Igaki, Hiroshi
    Nakayama, Yuko
    Itami, Jun
    JOURNAL OF RADIATION RESEARCH, 2019, 60 (01) : 116 - 123
  • [25] The Effect of 0.35 T and 1.5 T magnetic Fields on the Surface Dose in MR-guided Radiotherapy of Laryngeal Carcinoma
    Conrad, Mireille
    Dal Bello, Riccardo
    Van Timmeren, Janita
    Andratschke, Nicolaus
    Wilke, Lotte
    Guckenberger, Matthias
    Tanadini-Lang, Stephanie
    Balermpas, Panagiotis
    STRAHLENTHERAPIE UND ONKOLOGIE, 2023, 199 : S90 - S90
  • [26] Effect of 0.35 T and 1.5 T magnetic fields on superficial dose in MR-guided radiotherapy of laryngeal cancer
    Conrad, Mireille
    Dal Bello, Riccardo
    van Timmeren, Janita E.
    Andratschke, Nicolaus
    Wilke, Lotte
    Guckenberger, Matthias
    Tanadini-Lang, Stephanie
    Balermpas, Panagiotis
    CLINICAL AND TRANSLATIONAL RADIATION ONCOLOGY, 2023, 40
  • [27] A New Entropic Algorithm to Measure the Impact of Magnetic Field on Dose Distribution: Application to MRI-Guided Radiation Therapy
    Feugeas, J. L.
    Nicolai, P.
    Page, J.
    Birindelli, G.
    Caron, J.
    Dubroca, B.
    Kantor, G.
    Tikhonchuk, V.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2017, 99 (02): : E659 - E659
  • [28] Experimental evaluation of the impact of low tesla transverse magnetic field on dose distribution in presence of tissue interfaces
    Cusumano, Davide
    Teodoli, Stefania
    Greco, Francesca
    Fidanzio, Andrea
    Boldrini, Luca
    Massaccesi, Mariangela
    Cellini, Francesco
    Valentini, Vincenzo
    Azario, Luigi
    De Spirito, Marco
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2018, 53 : 80 - 85
  • [29] Investigation of 1.5T Magnetic Field Dose Effects On Organs Of Different Density
    Lee, H.
    Rubinstein, A.
    Ibbott, G.
    MEDICAL PHYSICS, 2015, 42 (06) : 3312 - 3312
  • [30] Magnetic-field-induced dose effects in MR-guided radiotherapy systems: dependence on the magnetic field strength
    Raaijmakers, A. J. E.
    Raaymakers, B. W.
    Lagendijk, J. J. W.
    PHYSICS IN MEDICINE AND BIOLOGY, 2008, 53 (04): : 909 - 923