Experimental investigation of TRS-483 reference dosimetry correction factors for Leksell Gamma Knife® Icon™ beams

被引:5
|
作者
Hager, Wille [1 ]
Kaveckyte, Vaiva [2 ,3 ]
Benmakhlouf, Hamza [3 ]
机构
[1] Stockholm Univ, Dept Phys, SE-10691 Stockholm, Sweden
[2] Linkoping Univ, Dept Med & Hlth Sci, Radiat Phys, SE-58185 Linkoping, Sweden
[3] Karolinska Univ Hosp, Dept Med Radiat Phys & Nucl Med, SE-17176 Stockholm, Sweden
关键词
code of practice; Leksell Gamma Knife; reference dosimetry; phantom; k(Qmsr; Q0)fmsr; fref; MONTE-CARLO; CALIBRATION-PHANTOM; SCATTER;
D O I
10.1002/mp.14561
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: Radiosurgery using the Leksell Gamma Knife (R) (LGK) Icon (TM) is an established technique used for treating intracranial lesions. The largest beam field size the LGK Icon can produce is a 16 mm diameter sphere. Despite this, reference dosimetry on the LGK Icon is typically performed using ionization chambers calibrated in 10 x 10 cm(2) fields. Furthermore, plastic phantoms are widely used instead of liquid water phantoms. In an effort to resolve these issues, the International Atomic Energy Agency (IAEA) in collaboration with American Association of Physicists in medicine (AAPM) recently published Technical Report Series No. 483 (TRS-483) as a Code of Practice for small-field dosimetry. TRS-483 includes small-field correction factors, k(Qmsr,Q0)(fmsr,fref), intended to account for the differences between setups when using small-field modalities such as the LGK Icon, and conventional setups. Since the publication of TRS-483, at least three new sets of values of k(Qmsr,Q0)(fmsr,fref) for the LGK Icon have been published. The purpose of this study was to experimentally investigate the published values of k(Qmsr,Q0)(fmsr,fref) for commonly used phantom and ionization chamber (IC) models for the LGK Icon. Methods: Dose-rates from two LGK units were determined using acrylonitrile butadiene styrene (ABS) and Certified Medical Grade Solid Water (R) (SW) phantoms, and PTW 31010 and PTW 31016 ICs. Correction factors were applied, and the resulting dose-rates compared. Relative validity of the correction factors was investigated by taking the ratios of dose-rate correction factor products. Additionally, dose-rates from the individual sectors were determined in order to calculate the beam attenuation caused by the ABS phantom adapter. Results and Conclusions: It was seen that the dose-rate is underestimated by at least 1% when using the ABS phantom, which was attributed to fluence perturbation caused by the IC and phantom adapter. Published correction factors k(Qmsr,Q0)(fmsr,fref) account for these effects to varying degree and should be used. The SW phantom is unlikely to underestimate the dose-rate by more than 1%, and applying k(Qmsr,Q0)(fmsr,fref) could not be shown to be necessary. Out of the two phantom models, the ABS phantom is not recommended for use in LGK reference dosimetry. The use of newly published values of k(Qmsr,Q0)(fmsr,fref) should be considered. (c) 2020 The Authors. Medical Physics published by Wiley Periodicals LLC on behalf of American Association of Physicists in Medicine
引用
收藏
页码:434 / 444
页数:11
相关论文
共 42 条
  • [31] Monte Carlo Computed KQmsr Correction Factors for Reference Dosimetry of Tomotherapy Beams for 7 Ion Chambers
    Sterpin, E.
    Mackie, R.
    Vynckier, S.
    MEDICAL PHYSICS, 2012, 39 (06) : 3598 - 3598
  • [32] Determination of small field synthetic single-crystal diamond detector correction factors for CyberKnife, Leksell Gamma Knife Perfexion and linear accelerator
    Veselsky, T.
    Novotny, J., Jr.
    Pastykova, V.
    Koniarova, I.
    PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2017, 44 : 66 - 71
  • [33] Experimental Validation of Monte Carlo Simulation for the Leksell Gamma Knife Perfexion Using Gafchromic EBT3 Dosimetry Film and Diamond Detector T60019 PTW
    Medjadj, T.
    Ksenofontov, A. I.
    Klimanov, V. A.
    Dalechina, A. V.
    Kirpichev, Y. S.
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 2021, 64 (01) : 146 - 152
  • [34] Experimental Validation of Monte Carlo Simulation for the Leksell Gamma Knife Perfexion Using Gafchromic EBT3 Dosimetry Film and Diamond Detector T60019 PTW
    T. Medjadj
    A. I. Ksenofontov
    V. A. Klimanov
    A. V. Dalechina
    Y. S. Kirpichev
    Instruments and Experimental Techniques, 2021, 64 : 146 - 152
  • [35] Advanced Techniques to Determine Plan-Class Specific Reference Field Correction Factors for Accurate Dosimetry of Nonstandard Beams
    Chung, E.
    Bouchard, H.
    Sutherland, J.
    Seuntjens, J.
    MEDICAL PHYSICS, 2009, 36 (06)
  • [36] Investigation of correction factors for non-reference conditions in ion chamber photon dosimetry with Monte-Carlo simulations
    Wulff, Joerg
    Heverhagen, Johannes T.
    Karle, Heiko
    Zink, Klemens
    ZEITSCHRIFT FUR MEDIZINISCHE PHYSIK, 2010, 20 (01): : 25 - 33
  • [37] Consistency of dose rates after applying machine-specific reference correction factors for the gamma knife 16 mm collimator field
    Choi, Yona
    Chun, Kook Jin
    Kim, Eun San
    Bahng, Jungbae
    Yang, Hye Jeong
    Kim, Tae Hoon
    Cho, Gyu Seok
    Choi, Sang Hyoun
    Seo, Young Chan
    Chung, Hyun-Tai
    MEDICAL PHYSICS, 2023, 50 (06) : 3816 - 3824
  • [38] Report on experimental beam quality correction factors kQ for high-energy photon beams by the NCS subcommittee 'Uniformity Dosimetry Protocols'
    Aalbers, AHL
    Hoornaert, MT
    Minken, AWH
    Palmans, H
    Pieksma, MWH
    Vynckier, S
    Wittkämper, FW
    RADIOTHERAPY AND ONCOLOGY, 2003, 68 : S110 - S110
  • [39] Full Monte Carlo Computation of K Correction Factors Calculated in Tomotherapy Static and Helical Deliveries for Future Ion Chamber Reference Dosimetry Protocols of Non Standard Beams
    Sterpin, E.
    Mackie, T.
    Lu, W.
    Olivera, G.
    Vynckier, S.
    MEDICAL PHYSICS, 2009, 36 (06)
  • [40] Calculation of K Correction Factors with Monte Carlo Simulations in Tomotherapy Clinical Helical Deliveries for Future Ion Chamber Reference Dosimetry Protocols of Non-standard Beams
    Sterpin, E. S.
    Mackie, T. R.
    Lu, W.
    Olivera, G. H.
    Vynckier, S.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2009, 75 (03): : S666 - S667