Dose Profile Modulation of Proton Minibeam for Clinical Application

被引:7
作者
Kim, Myeongsoo [1 ]
Hwang, Ui-Jung [2 ]
Park, Kyeongyun [1 ]
Kim, Dohyeon [1 ]
Kim, Hak Soo [1 ]
Choi, Sang Hyoun [3 ]
Jeong, Jong Hwi [1 ]
Shin, Dongho [1 ]
Lee, Se Byeong [1 ]
Kim, Joo-Young [1 ]
Kim, Tae Hyun [1 ]
Baek, Hye Jung [4 ]
Kim, Hojin [5 ]
Kim, Kihwan [2 ]
Kim, Sang Soo [4 ]
Lim, Young Kyung [1 ]
机构
[1] Natl Canc Ctr, Proton Therapy Ctr, Dept Radiat Oncol, Goyang 10408, South Korea
[2] Chungnam Natl Univ, Coll Med, Dept Radiat Oncol, Daejeon 35015, South Korea
[3] Korea Canc Ctr Hosp, Dept Radiat Oncol, Seoul 01812, South Korea
[4] Natl Canc Ctr, Res Inst, Radiol Sci Branch, Goyang 10408, South Korea
[5] Yonsei Univ, Coll Med, Yonsei Canc Ctr, Dept Radiat Oncol, Seoul 03722, South Korea
关键词
spatially fractionated radiation therapy; proton therapy; proton minibeam radiation therapy; multislit collimator; scatterer; peak-to-valley dose ratio; MICROBEAM RADIATION-THERAPY;
D O I
10.3390/cancers14122888
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Simple Summary Proton minibeam radiation therapy (pMBRT) using multislit collimator (MSC) and scatterers has been proposed to spare healthy tissues and organs on the beam path and beyond the Bragg peak. An MSC that was much thicker than the maximum range of the proton beam could provide a sufficiently high peak-to-valley dose ratio at the patient's skin, and the scatterers could actively convert the spatially fractionated proton beam to a uniform and broad beam in tumors by changing their thickness. The combination of the MSC and the scatterers can be a good solution for implementing pMBRT in clinical proton therapy facilities. The feasibility of proton minibeam radiation therapy (pMBRT) using a multislit collimator (MSC) and a scattering device was evaluated for clinical use at a clinical proton therapy facility. We fabricated, through Monte Carlo (MC) simulations, not only an MSC with a high peak-to-valley dose ratio (PVDR) at the entrance of the proton beam, to prevent radiation toxicity, but also a scattering device to modulate the PVDR in depth. The slit width and center-to-center distance of the diverging MSC were 2.5 mm and 5.0 mm at the large end, respectively, and its thickness and available field size were 100 mm and 76 x 77.5 mm(2), respectively. Spatially fractionated dose distributions were measured at various depths using radiochromic EBT3 films and also tested on bacterial cells. MC simulation showed that the thicker the MSC, the higher the PVDR at the phantom surface. Dosimetric evaluations showed that lateral dose profiles varied according to the scatterer's thickness, and the depths satisfying PVDR = 1.1 moved toward the surface as their thickness increased. The response of the bacterial cells to the proton minibeams' depth was also established, in a manner similar to the dosimetric pattern. Conclusively, these results strongly suggest that pMBRT can be implemented in clinical centers by using MSC and scatterers.
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页数:11
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共 30 条
  • [1] The centenary of the discovery of the Bragg peak
    Andrew, BA
    Suit, H
    [J]. RADIOTHERAPY AND ONCOLOGY, 2004, 73 (03) : 265 - 268
  • [2] Effects of microbeam radiation therapy on normal and tumoral blood vessels
    Bouchet, Audrey
    Serduc, Raphaeel
    Laissue, Jean Albert
    Djonov, Valentin
    [J]. PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2015, 31 (06): : 634 - 641
  • [3] Therapeutic step and shoot proton beam spot-scanning with a multi-leaf collimator: A Monte Carlo study
    Bues, M
    Newhauser, WD
    Titt, U
    Smith, AR
    [J]. RADIATION PROTECTION DOSIMETRY, 2005, 115 (1-4) : 164 - 169
  • [4] Converging Proton Minibeams with Magnetic Fields for Optimized Radiation Therapy: A Proof of Concept
    Cavallone, Marco
    Prezado, Yolanda
    De Marzi, Ludovic
    [J]. CANCERS, 2022, 14 (01)
  • [5] Coutrakon G., 1999, Proceedings of the 1999 Particle Accelerator Conference (Cat. No.99CH36366), P11, DOI 10.1109/PAC.1999.795612
  • [6] TUMOR CELL RESPONSE TO SYNCHROTRON MICROBEAM RADIATION THERAPY DIFFERS MARKEDLY FROM CELLS IN NORMAL TISSUES
    Crosbie, Jeffrey C.
    Anderson, Robin L.
    Rothkamm, Kai
    Restall, Christina M.
    Cann, Leonie
    Ruwanpura, Saleela
    Meachem, Sarah
    Yagi, Naoto
    Svalbe, Imants
    Lewis, Robert A.
    Williams, Bryan R. G.
    Rogers, Peter A. W.
    [J]. INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2010, 77 (03): : 886 - 894
  • [7] Curtis H J, 1967, Radiat Res Suppl, V7, P250, DOI 10.2307/3583718
  • [8] Implementation of planar proton minibeam radiation therapy using a pencil beam scanning system: A proof of concept study
    De Marzi, Ludovic
    Patriarca, Annalisa
    Nauraye, Catherine
    Hierso, Eric
    Dendale, Remi
    Guardiola, Consuelo
    Prezado, Yolanda
    [J]. MEDICAL PHYSICS, 2018, 45 (11) : 5305 - 5316
  • [9] Tissue-sparing effect of x-ray microplanar beams particularly in the CNS:: Is a bystander effect involved?
    Dilmanian, F. Avraham
    Qu, Yun
    Feinendegen, Ludwig E.
    Pena, Louis A.
    Bacarian, Tigran
    Henn, Fritz A.
    Kalef-Ezra, John
    Liu, Su
    Zhong, Zhong
    McDonald, John W.
    [J]. EXPERIMENTAL HEMATOLOGY, 2007, 35 (04) : 69 - 77
  • [10] Minibeam Therapy With Protons and Light Ions: Physical Feasibility and Potential to Reduce Radiation Side Effects and to Facilitate Hypofractionation
    Dilmanian, F. Avraham
    Eley, John G.
    Krishnan, Sunil
    [J]. INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2015, 92 (02): : 469 - 474