Effect of Target Changes on Target Coverage and Dose to the Normal Brain in Fractionated Stereotactic Radiation Therapy for Metastatic Brain Tumors

被引:1
|
作者
Miura, Hideharu [1 ,2 ]
Kenjo, Masahiro [1 ,2 ]
Doi, Yoshiko [1 ,2 ]
Ueda, Taro [1 ,2 ]
Nakao, Minoru [1 ,2 ]
Ozawa, Shuichi [1 ,2 ]
Nagata, Yasushi [1 ,2 ]
机构
[1] Hiroshima High Precis Radiat Therapy Canc Ctr, 3-2-2 Futabanosato,Higashi Ku, Hiroshima 7320057, Japan
[2] Hiroshima Univ, Inst Biomed & Hlth Sci, Dept Radiat Oncol, 1-2-3 Kasumi Minami Ku, Hiroshima, Hiroshima 7348553, Japan
关键词
PATIENT SETUP UNCERTAINTY; LOCAL-CONTROL; BONY ANATOMY; RADIOTHERAPY; VOLUME; RADIOSURGERY; SYSTEM;
D O I
10.1016/j.adro.2023.101264
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: We evaluated the dosimetric effect of tumor changes in patients with fractionated brain stereotactic radiation therapy (SRT) on the tumor and normal brain using repeat verification magnetic resonance imaging (MRI) in the middle of the treatment period. Methods and Materials: Fifteen large intracranial metastatic lesions with fractionated SRT were scanned employing standardized planning MRI (MRI-1). Repeat verification MRI (MRI-2) were performed during the middle of the irradiation period. Gross tumor volume (GTV) was defined as the volume of the contrast-enhancing lesion on T1-weighted MRI with gadolinium contrast agent. The doses to the tumor and normal brain were evaluated on the MRI-1 scan. Beam configuration and intensity on the initial volumetric modulated arc therapy plan were used to evaluate the dose to the tumor and the normal brain on MRI-2. We evaluated the effect of D98% (percent dose irradiating 98% of the volume) on the GTV using the plans on the MRI-1 and MRI-2 scans. For the normal brain, the V90%, V80%, and V50% (volume of the normal brain receiving >90%, 80%, and 50% of the prescribed dose, respectively) were investigated. Results: Three (20% of the total) and 4 (26% of the total) tumors exhibited volume shrinkage or enlargement changes of >10%. Five (33% of the total) tumors exhibited volume shrinkage and enlargement changes of <10%. Three tumors (20% of the total) showed no volume changes. D98% of the GTV increased in patients with tumor shrinkage because of dose inhomogeneity and decreased in patients with tumor enlargement, with a coefficient of determination of 0.28. The V90%, V80%, and V50% increase with decreasing tumor volumes and were linearly related to the tumor volume difference with a coefficient of determination values of 0.97, 0.98, and 0.97, respectively. Conclusions: Repeat verification MRI for brain fractionated SRT during the treatment period should be considered to reduce the magnitude of target underdosing or normal brain overdosing. © 2023 The Author(s)
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Modifying the planning target volume to optimize the dose distribution in dynamic conformal arc therapy for large metastatic brain tumors
    Kengo Ogura
    Yasuhiro Kosaka
    Toshiyuki Imagumbai
    Kazuhito Ueki
    Ryo Narukami
    Takayuki Hattori
    Masaki Kokubo
    Japanese Journal of Radiology, 2017, 35 : 335 - 340
  • [22] Leukoencephalopathy after whole brain radiation therapy for metastatic brain tumors
    Ebi, J.
    Sato, H.
    Shishido, F.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2007, 69 (03): : S255 - S255
  • [23] Modifying the planning target volume to optimize the dose distribution in dynamic conformal arc therapy for large metastatic brain tumors
    Ogura, Kengo
    Kosaka, Yasuhiro
    Imagumbai, Toshiyuki
    Ueki, Kazuhito
    Narukami, Ryo
    Hattori, Takayuki
    Kokubo, Masaki
    JAPANESE JOURNAL OF RADIOLOGY, 2017, 35 (06) : 335 - 340
  • [24] Fractionated Stereotactic Radiation Therapy for Metastatic Brain Tumors Recurring After Gamma-knife Radiosurgery: Acceptable Toxicity and Improved Local Control
    Miyakawa, A.
    Shibamoto, Y.
    Ishikura, S.
    Mori, Y.
    Kosaki, K.
    Otsuka, S.
    Iwata, H.
    Takemoto, S.
    Hirai, T.
    Serizawa, T.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2012, 84 (03): : S292 - S292
  • [25] A Dosimetric Evaluation of Target Coverage as a Predictor of Local Failure Following Stereotactic Body Radiation Therapy for Spinal Tumors
    Jawad, M. S.
    Ionascu, D.
    Zhou, J.
    Harb, J. G.
    Martin, S. K.
    Wloch, J.
    Mangona, V. S.
    Krauss, D. J.
    Fahim, D.
    Grills, I. S.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2013, 87 (02): : S266 - S266
  • [26] Dosimetric evaluation of target coverage as a predictor of local failure following stereotactic body radiation therapy for spinal tumors
    Jawad, Maha Saada
    Zhou, Jun
    Harb, Joe G.
    Ben Wilkinson, J.
    Prausa, Shannon K.
    Wloch, Jennifer
    Krauss, Daniel J.
    Fahim, Daniel
    Yan, Di
    Grills, Inga S.
    JOURNAL OF RADIOSURGERY AND SBRT, 2015, 3 (03): : 225 - 235
  • [27] Repositioning accuracy with the Laitinen frame for fractionated stereotactic radiation therapy in adult and pediatric brain tumors: Preliminary report
    Kalapurakal, JA
    Ilahi, Z
    Kepka, AG
    Bista, T
    Goldman, S
    Tomita, T
    Marymont, MH
    RADIOLOGY, 2001, 218 (01) : 157 - 161
  • [28] HISTOLOGIC-CHANGES IN BRAIN-TUMORS AFTER FRACTIONATED STEREOTAXIC RADIATION-THERAPY
    SUMI, M
    IKEDA, H
    TOKUUE, K
    SHIBUI, S
    NOMURA, K
    KAMIYA, M
    RADIOLOGY, 1995, 197 : 445 - 445
  • [29] Stereotactic Radiation Therapy of Patients With Brain Tumors: Khabarovsk Experience
    Sivov, Evgeniy
    Vitko, A. V.
    Kovalenko, V. L.
    Molokov, A. A.
    Poshataev, K. E.
    Gi, Kim Won
    Kosmachev, M. V.
    Ivanova, E. I.
    STEREOTACTIC AND FUNCTIONAL NEUROSURGERY, 2013, 91 : 311 - 311
  • [30] The impact of target positioning error and tumor size on radiobiological parameters in robotic stereotactic radiosurgery for metastatic brain tumors
    Takeshi Takizawa
    Satoshi Tanabe
    Hisashi Nakano
    Satoru Utsunomiya
    Madoka Sakai
    Katsuya Maruyama
    Shigekazu Takeuchi
    Toshimichi Nakano
    Atsushi Ohta
    Motoki Kaidu
    Hiroyuki Ishikawa
    Kiyoshi Onda
    Radiological Physics and Technology, 2022, 15 : 135 - 146