An image guided small animal radiation therapy platform (SmART) to monitor glioblastoma progression and therapy response

被引:20
|
作者
Yahyanejad, Sanaz [1 ]
van Hoof, Stefan J. [1 ]
Theys, Jan [1 ]
Barbeau, Lydie M. O. [1 ]
Granton, Patrick V. [2 ]
Paesmans, Kim [1 ]
Verhaegen, Frank [1 ]
Vooijs, Marc [1 ]
机构
[1] Maastricht Univ, GROW Sch Dev Biol & Oncol, Dept Radiotherapy MaastRO, NL-6229 ER Maastricht, Netherlands
[2] London Hlth Sci Ctr, Dept Oncol, London, ON, Canada
基金
欧洲研究理事会;
关键词
Glioblastoma; Small animal radiation; 3D model; Image guided; Temozolomide; Micro-CT; TEMOZOLOMIDE; RESISTANCE; GROWTH; 3D;
D O I
10.1016/j.radonc.2015.06.020
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Background and purpose: Glioblastoma multiforme is the most common malignant brain tumor. Standard treatment including surgery, radiotherapy and chemotherapy with temozolomide is not curative. There is a great need for in vitro and in vivo models closely mimicking clinical practice to ensure better translation of novel preclinical findings. Methods and materials: A 3D spheroid model was established using the U87MG cell line. The efficacy of temozolomide, RT and combinations was assessed using growth delay assays. Orthotopic glioblastoma tumors were established, different radiation doses delivered based on micro-CT based treatment planning (SmART-plan) and dose volume histograms (DVH) were determined. Tumor growth was monitored using bioluminescent imaging. Results: 3D spheroid cultures showed a dose-dependent growth delay upon single and combination treatments. Precise uniform radiation was achieved in all in vivo treatment groups at all doses tested, and DVHs showed accurate dose coverage in the planning target volume which resulted in tumor growth delay. Conclusion: We demonstrate that 3D spheroid technology can be reliably used for treatment efficacy evaluation and that mimicking a clinical setting is also possible in small animals. Both these in vitro and in vivo techniques can be combined for clinically relevant testing of novel drugs combined with radiation. (C) 2015 Elsevier Ireland Ltd. All rights reserved.
引用
收藏
页码:467 / 472
页数:6
相关论文
共 50 条
  • [41] Re-irradiation of recurrent glioblastoma multiforme using 11C-methionine PET/CT/MRI image fusion for hypofractionated stereotactic radiotherapy by intensity modulated radiation therapy
    Miwa, Kazuhiro
    Matsuo, Masayuki
    Ogawa, Shin-ichi
    Shinoda, Jun
    Yokoyama, Kazutoshi
    Yamada, Jitsuhiro
    Yano, Hirohito
    Iwama, Toru
    RADIATION ONCOLOGY, 2014, 9
  • [42] A practical cone-beam CT scatter correction method with optimized Monte Carlo simulations for image-guided radiation therapy
    Xu, Yuan
    Bai, Ti
    Yan, Hao
    Ouyang, Luo
    Pompos, Arnold
    Wang, Jing
    Zhou, Linghong
    Jiang, Steve B.
    Jia, Xun
    PHYSICS IN MEDICINE AND BIOLOGY, 2015, 60 (09) : 3567 - 3587
  • [43] FEASIBILITY OF REIRRADIATION OF RECURRENT SINONASAL CARCINOMA IN THE PERIORBITAL REGION USING HYPOFRACTIONATED IMAGE-GUIDED INTENSITY-MODULATED RADIATION THERAPY
    Thiagarajan, Anuradha
    Mechalakos, James
    Lee, Nancy
    HEAD AND NECK-JOURNAL FOR THE SCIENCES AND SPECIALTIES OF THE HEAD AND NECK, 2011, 33 (09): : 1372 - 1378
  • [44] Mesenchymal Stem Cell-mediated Image-guided Sodium Iodide Symporter (NIS) Gene Therapy Improves Survival of Glioblastoma-bearing Mice
    Kitzberger, Carolin
    Spellerberg, Rebekka
    Han, Yang
    Schmohl, Kathrin A.
    Stauss, Christina
    Zach, Christian
    Kaelin, Roland E.
    Multhoff, Gabriele
    Eiber, Matthias
    Schilling, Franz
    Glass, Rainer
    Weber, Wolfgang A.
    Wagner, Ernst
    Nelson, Peter J.
    Spitzweg, Christine
    CLINICAL CANCER RESEARCH, 2023, 29 (05) : 930 - 942
  • [45] Radiogenomic characterization of response to chemo-radiation therapy in Glioblastoma is associated with PI3K/AKT/mTOR and apoptosis signaling pathways
    Beig, Niha
    Prasanna, Prateek
    Hill, Virginia
    Verma, Ruchika
    Varadan, Vinay
    Madabhushi, Anant
    Tiwari, Pallavi
    MEDICAL IMAGING 2019: COMPUTER-AIDED DIAGNOSIS, 2019, 10950
  • [46] Effects of Tumor Mutational Burden and Gene Alterations Associated with Radiation Response on Outcomes of Postoperative Radiation Therapy in Non-Small Cell Lung Cancer
    Shaverdian, Narek
    Shepherd, Annemarie F.
    Li, Xingzhe
    Offin, Michael
    Lengel, Harry B.
    Gelblum, Daphna Y.
    Wu, Abraham J.
    Simone, Charles B. I. I. I. I.
    Rimner, Andreas
    Jones, David R.
    Chaft, Jamie E.
    Riaz, Nadeem
    Gomez, Daniel R.
    INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2022, 113 (02): : 335 - 344
  • [47] Dual-Modality Monitoring of Tumor Response to Cyclophosphamide Therapy in Mice with Bioluminescence Imaging and Small-Animal Positron Emission Tomography
    Ma, Xibo
    Liu, Zhaofei
    Yang, Xin
    Gao, Qiujuan
    Zhu, Shouping
    Qin, Chenghu
    Liu, Kai
    Zhang, Bo
    Han, Dong
    Wang, Fan
    Tian, Jie
    MOLECULAR IMAGING, 2011, 10 (04): : 278 - 283
  • [48] Engineering Tumor-Specific Nanotheranostic Agent with MR Image-Guided NIR-II & -III Photodynamic Therapy to Combat Against Deeply Seated Orthotopic Glioblastoma
    Nuthalapati, Karthik
    Vankayala, Raviraj
    Shanmugam, Munusamy
    Thangudu, Suresh
    Chiang, Chi-Shiun
    Hwang, Kuo Chu
    SMALL SCIENCE, 2024, 4 (10):
  • [49] Antibody Targeting GRP78 Enhances the Efficacy of Radiation Therapy in Human Glioblastoma and Non-Small Cell Lung Cancer Cell Lines and Tumor Models
    Dadey, David Y. A.
    Kapoor, Vaishali
    Hoye, Kelly
    Khudanyan, Arpine
    Collins, Andrea
    Thotala, Dinesh
    Hallahan, Dennis E.
    CLINICAL CANCER RESEARCH, 2017, 23 (10) : 2556 - 2564
  • [50] Mutant KRAS associated malic enzyme 1 expression is a predictive marker for radiation therapy response in non-small cell lung cancer
    Chakrabarti, Gaurab
    RADIATION ONCOLOGY, 2015, 10