Development and characterization of an isogenic cell line with a radioresistant phenotype

被引:21
作者
de Llobet, Lara I. [1 ]
Baro, Marta [1 ]
Figueras, Agnes [1 ]
Modolell, Ignasi [2 ]
Da Silva, Maria V. [3 ]
Munoz, Purificacion [3 ]
Navarro, Arturo [4 ]
Mesia, Ricard [5 ]
Balart, Josep [1 ]
机构
[1] IDIBELL, Catalan Inst Oncol, Translat Res Lab, Lhospitalet De Llobregat 08907, Spain
[2] IDIBELL, Catalan Inst Oncol, Dept Radiophys & Radioprotect, Lhospitalet De Llobregat 08907, Spain
[3] IDIBELL, Canc Biol & Epigenet Lab, Lhospitalet De Llobregat 08907, Spain
[4] IDIBELL, Catalan Inst Oncol, Dept Radiat Oncol, Lhospitalet De Llobregat 08907, Spain
[5] IDIBELL, Catalan Inst Oncol, Dept Med Oncol, Lhospitalet De Llobregat 08907, Spain
关键词
Development of isogenic cell line model; Emergence of radiation resistance; Aggressive phenotype; GENE-EXPRESSION PROFILES; IONIZING-RADIATION; FRACTIONATED-IRRADIATION; GLIOMA-CELLS; DNA-REPAIR; STEM-CELLS; CANCER; GROWTH; RADIOTHERAPY; APOPTOSIS;
D O I
10.1007/s12094-012-0898-8
中图分类号
R73 [肿瘤学];
学科分类号
100214 [肿瘤学];
摘要
Radiation resistance is a major cause of death in cancer patients. Cancer cells react during radiotherapy by re-programming specific cell functions that may confer resistance to radiation. The understanding of this complex process is hindered due to the lack of appropriate study models. We describe an experimental development of a radioresistant isogenic cancer cell line, and its molecular characterization. A431-cultured cells were irradiated for 7 month until 85 Gy. Then, a selected single cell was left to grow as stable A431-R cell line. Clonogenic assay was used to determine cell survival, the alpha and beta parameters of the LQ model, and the mean inactivation dose. The DNA repair ability of cells was evaluated by pulsed-field electrophoresis method. Differential effect of fractionated radiation was ultimately tested in xenografts. Furthermore, we used a wound healing assay, Western blot for EGFR, AKT and ERK1/2 and ELISA test for vascular endothelial growth factor (VEGF) secretion. Finally we explored CD44 marker and cell cycle distribution. The established A431-R cell line showed radiation resistance in clonogenic assays, repair of radiation-induced DNA fragmentation and xenografted tumours. The radiation resistance was associated with in vitro higher cell growth and migration, increased levels of former oncoproteins, and secretion of VEGF. In this model, the emergence of radiation resistance was associated with the acquisition of biological traits that support more aggressive behaviour of cancer cells. We have generated a model that will be useful for mechanistic studies and development of rational treatments against radiation resistance in cancer.
引用
收藏
页码:189 / 197
页数:9
相关论文
共 24 条
[1]
The root of the problem [J].
Abbott, Alison .
NATURE, 2006, 442 (7104) :742-743
[2]
The use of caspase inhibitors in pulsed-field gel electrophoresis may improve the estimation of radiation-induced DNA repair and apoptosis [J].
Balart, Josep ;
Pueyo, Gemma ;
de Llobet, Lara I. ;
Baro, Marta ;
Sole, Xavi ;
Marin, Susanna ;
Casanovas, Oriol ;
Mesia, Ricard ;
Capella, Gabriel .
RADIATION ONCOLOGY, 2011, 6
[3]
Development and refinement of a technique using a medical radiation therapy facility to irradiate immunodeficient mice bearing xenografted human tumours [J].
Baro, Marta ;
de Llobet, Lara I. ;
Modolell, Ignasi ;
Guedea, Ferran ;
Visa, Joana ;
Balart, Josep .
LABORATORY ANIMALS, 2012, 46 (04) :345-348
[4]
DNA damage response as a candidate anti-cancer barrier in early human tumorigenesis [J].
Bartkova, J ;
Horejsi, Z ;
Koed, K ;
Krämer, A ;
Tort, F ;
Zieger, K ;
Guldberg, P ;
Sehested, M ;
Nesland, JM ;
Lukas, C ;
Orntoft, T ;
Lukas, J ;
Bartek, J .
NATURE, 2005, 434 (7035) :864-870
[5]
Clinical implications of cancer self-seeding [J].
Comen, Elizabeth ;
Norton, Larry ;
Massague, Joan .
NATURE REVIEWS CLINICAL ONCOLOGY, 2011, 8 (06) :369-377
[6]
Induction of MET by Ionizing Radiation and Its Role in Radioresistance and Invasive Growth of Cancer [J].
De Bacco, Francesca ;
Luraghi, Paolo ;
Medico, Enzo ;
Reato, Gigliola ;
Girolami, Flavia ;
Perera, Timothy ;
Gabriele, Pietro ;
Comoglio, Paolo M. ;
Boccaccio, Carla .
JOURNAL OF THE NATIONAL CANCER INSTITUTE, 2011, 103 (08) :645-661
[7]
CD44 Expression Predicts Local Recurrence after Radiotherapy in Larynx Cancer [J].
de Jong, Monique C. ;
Pramana, Jimmy ;
van der Wal, Jacqueline E. ;
Lacko, Martin ;
Peutz-Kootstra, Carine J. ;
de Jong, Jos M. ;
Takes, Robert P. ;
Kaanders, Johannes H. ;
van der Laan, Bernard F. ;
Wachters, Jasper ;
Jansen, Jeroen C. ;
Rasch, Coen R. ;
van Velthuysen, Marie-Louise F. ;
Grenman, Reidar ;
Hoebers, Frank J. ;
Schuuring, Ed ;
van den Brekel, Michiel W. ;
Begg, Adrian C. .
CLINICAL CANCER RESEARCH, 2010, 16 (21) :5329-5338
[8]
The biology of cancer: Metabolic reprogramming fuels cell growth and proliferation [J].
DeBerardinis, Ralph J. ;
Lum, Julian J. ;
Hatzivassiliou, Georgia ;
Thompson, Craig B. .
CELL METABOLISM, 2008, 7 (01) :11-20
[9]
Radiation-induced epidermal growth factor receptor nuclear import is linked to activation of DNA-dependent protein kinase [J].
Dittmann, K ;
Mayer, C ;
Fehrenbacher, B ;
Schaller, M ;
Raju, U ;
Milas, L ;
Chen, DJ ;
Kehlbach, R ;
Rodemann, HP .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (35) :31182-31189
[10]
Differential gene expression profiles of radioresistant oesophageal cancer cell lines established by continuous fractionated irradiation [J].
Fukuda, K ;
Sakakura, C ;
Miyagawa, K ;
Kuriu, Y ;
Kin, S ;
Nakase, Y ;
Hagiwara, A ;
Mitsufuji, S ;
Okazaki, Y ;
Hayashizaki, Y ;
Yamagishi, H .
BRITISH JOURNAL OF CANCER, 2004, 91 (08) :1543-1550