Treatment planning considerations in contrast-enhanced radiotherapy: energy and beam aperture optimization

被引:18
|
作者
Garnica-Garza, H. M. [1 ]
机构
[1] Inst Politecn Nacl Unidad Monterrey, Ctr Invest & Estudios Avanzados, Apodaca 66600, NL, Mexico
来源
PHYSICS IN MEDICINE AND BIOLOGY | 2011年 / 56卷 / 02期
关键词
DOSE ENHANCEMENT; GOLD NANOPARTICLES; RADIATION; FEASIBILITY;
D O I
10.1088/0031-9155/56/2/004
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
It has been shown that the use of kilovoltage x-rays in conjunction with a contrast agent incorporated into the tumor can lead to acceptable treatment plans with regard to the absorbed dose distribution produced in the target as well as in the tissue and organs at risk surrounding it. In this work, several key aspects related to the technology and irradiation techniques necessary to clinically implement this treatment modality are addressed by means of Monte Carlo simulation. The Zubal phantom was used to model a prostate radiotherapy treatment, a challenging site due to the depth of the prostate and the presence of bony structures that must be traversed by the x-ray beam on its way to the target. It is assumed that the concentration levels of the enhancing agent present in the tumor are at or below 10 mg per 1 g of tissue. The Monte Carlo code PENELOPE was used to model a commercial x-ray tube having a tungsten target. X-ray energy spectra for several combinations of peak electron energy and added filtration were obtained. For each energy spectrum, a treatment plan was calculated, with the PENELOPE Monte Carlo code, by modeling the irradiation of the patient as 72 independent conformal beams distributed at intervals of 5. around the phantom in order to model a full x-ray source rotation. The Cimmino optimization algorithm was then used to find the optimum beam weight and energy for different treatment strategies. It is shown that for a target dose prescription of 72 Gy covering the whole tumor, the maximum rectal wall and bladder doses are kept below 52 Gy for the largest concentration of contrast agent of 10 mg per 1 g of tissue. It is also shown that concentrations of as little as 5 mg per 1 g of tissue also render dose distributions with excellent sparing of the organs at risk. A treatment strategy to address the presence of non-uniform distributions of the contrast agent in the target is also modeled and discussed.
引用
收藏
页码:341 / 355
页数:15
相关论文
共 50 条
  • [1] Treatment plans optimization for contrast-enhanced synchrotron stereotactic radiotherapy
    Edouard, M.
    Broggio, D.
    Prezado, Y.
    Esteve, F.
    Elleaume, H.
    Adam, J. F.
    [J]. MEDICAL PHYSICS, 2010, 37 (06) : 2445 - 2456
  • [2] Contrast-enhanced dual-energy digital subtraction mammography: Optimization of the beam energy
    Kwan, ALC
    Boone, JM
    Le-Petross, H
    Lindfors, KK
    Seibert, JA
    Lewin, JM
    [J]. Medical Imaging 2005: Physics of Medical Imaging, Pts 1 and 2, 2005, 5745 : 1317 - 1321
  • [3] Dosimetric consequences of contrast-enhanced CT planning for thoracic radiotherapy
    Lalondrelle, S.
    Jones, M.
    Barnard, A.
    Illsley, M.
    Ezhil, V.
    [J]. LUNG CANCER, 2010, 67 : S35 - S36
  • [4] USE OF CONTRAST-ENHANCED COMPUTED TOMOGRAPHY (CE-CT) IN CONFORMAL RADIOTHERAPY TREATMENT PLANNING
    Szanto, E.
    Hideghety, K.
    Rusko, L.
    Molnar, G.
    Zoltan, N.
    Fodor, E.
    Varga, Z.
    Gaal, S.
    Vereb, B.
    Zag, L.
    Cserhati, A.
    [J]. RADIOTHERAPY AND ONCOLOGY, 2011, 99 : S584 - S584
  • [5] On the optimization of the transmitted beam in contrast-enhanced ultrasound medical imaging
    Curletto, Simone
    Palmese, Maria
    Trucco, Andrea
    [J]. IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2007, 56 (04) : 1239 - 1248
  • [6] Monte Carlo modeling and optimization of contrast-enhanced radiotherapy of brain tumors
    Perez-Lopez, C. E.
    Garnica-Garza, H. M.
    [J]. PHYSICS IN MEDICINE AND BIOLOGY, 2011, 56 (13): : 4059 - 4072
  • [7] Radiation source personalization for nanoparticle-enhanced radiotherapy using dynamic contrast-enhanced MRI in the treatment planning process
    Diaz-Galindo, C. A.
    Garnica-Garza, H. M.
    [J]. RADIATION PHYSICS AND CHEMISTRY, 2024, 217
  • [8] Contrast-enhanced mammography: Technical considerations
    Balleyguier, Corinne
    Arfi-Rouche, Julia
    Loshkajian, Ara
    Ceugnart, Luc
    Doutriaux-Dumoulin, Isabelle
    [J]. IMAGERIE DE LA FEMME, 2023, 33 (03) : 133 - 138
  • [9] Radiotherapy treatment planning with contrast-enhanced computed tomography: feasibility of dual-energy virtual unenhanced imaging for improved dose calculations
    Sachiko Yamada
    Takashi Ueguchi
    Toshiyuki Ogata
    Hirokazu Mizuno
    Ryota Ogihara
    Masahiko Koizumi
    Takeshi Shimazu
    Kenya Murase
    Kazuhiko Ogawa
    [J]. Radiation Oncology, 9
  • [10] Radiotherapy treatment planning with contrast-enhanced computed tomography: feasibility of dual-energy virtual unenhanced imaging for improved dose calculations
    Yamada, Sachiko
    Ueguchi, Takashi
    Ogata, Toshiyuki
    Mizuno, Hirokazu
    Ogihara, Ryota
    Koizumi, Masahiko
    Shimazu, Takeshi
    Murase, Kenya
    Ogawa, Kazuhiko
    [J]. RADIATION ONCOLOGY, 2014, 9