Differential gene expression profiles of radioresistant pancreatic cancer cell lines established by fractionated irradiation

被引:4
作者
Ogawa, K
Utsunomiya, T
Mimori, K
Tanaka, F
Haraguchi, N
Inoue, H
Murayama, S
Mori, M
机构
[1] Kyushu Univ, Dept Mol & Surg Oncol, Med Inst Bioregulat, Beppu, Oita 8740838, Japan
[2] Univ Ryukyus, Dept Radiol, Okinawa, Japan
关键词
pancreas; pancreatic neoplasms; radiation; radiosensitive; radioresistant;
D O I
暂无
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Identification of the genes that are differentially-expressed between radiosensitive and radioresistant cancer cells is important to the ability to predict the clinical effectiveness of radiotherapy. We established radioresistant human pancreatic cancer cell lines using fractionated irradiation in order to identify genes that are differentially-ex pressed between parental lines and radioresistant cell sublines. Six pancreatic cancer cell lines (PK-1, PK-8, PK-9, T3M4, MiaPaCa2 and PANC-1) were treated with 10 Gy fractionated irradiation at approximately two-week intervals (total dose 150-180 Gy). Five radioresistant sublines (PK-1, PK-8, PK-9, T3M4, and MiaPaCa2) were successfully established. Using oligonucleotide microarrays containing 17,086 genes, we identified 73 up-regulated genes and 55 down-regulated genes common to radioresistant sublines. Subsequent analysis by quantitative RT-PCR confirmed the reliability of our microarray strategy. Up-regulated genes were associated with growth factor (example, amphiregidin), cell-cycle check point (MAPKAPK2), intraceflular signaling pathway (regucalcin), and angiogenesis stimulation (angiopoietin 2). Down-regulated genes were associated with apoptosis (caspase 8), retinoid esterification (lecithin retinol acyltransferase), and electron transport (calcium-activated chloride channel 1). Some of these genes have known association with response to radiation, Such as caspase 8 and MAPKAPK2, but others are novel. Global gene analysis of radioresistant sublines may provide new insights into the mechanisms underlying clinical radioresistance and to improving the efficacy of radiotherapy for pancreatic cancer.
引用
收藏
页码:705 / 713
页数:9
相关论文
共 44 条
[31]   Mitogen-activated protein kinase pathways [J].
Robinson, MJ ;
Cobb, MH .
CURRENT OPINION IN CELL BIOLOGY, 1997, 9 (02) :180-186
[32]   Molecular and biochemical characterization of lecithin retinol acyltransferase [J].
Ruiz, A ;
Winston, A ;
Lim, YH ;
Gilbert, BA ;
Rando, RR ;
Bok, D .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (06) :3834-3841
[33]  
RUSSELL J, 1995, CANCER RES, V55, P4915
[34]   Radiosensitivity of human pancreatic cancer cells in vitro and in vivo, and the effect of a new hypoxic cell sensitizer, doranidazole [J].
Shibamoto, Y ;
Kubota, T ;
Kishii, K ;
Tsujitani, M .
RADIOTHERAPY AND ONCOLOGY, 2000, 56 (02) :265-270
[35]   STRUCTURE AND FUNCTION OF HUMAN AMPHIREGULIN - A MEMBER OF THE EPIDERMAL GROWTH-FACTOR FAMILY [J].
SHOYAB, M ;
PLOWMAN, GD ;
MCDONALD, VL ;
BRADLEY, JG ;
TODARO, GJ .
SCIENCE, 1989, 243 (4894) :1074-1076
[36]   THE RAS ONCOGENES INCREASE THE INTRINSIC RESISTANCE OF NIH-3T3 CELLS TO IONIZING-RADIATION [J].
SKLAR, MD .
SCIENCE, 1988, 239 (4840) :645-647
[37]   Caspase-8 gene transduction augments radiation-induced apoptosis in DLD-1 cells [J].
Uchida, H ;
Shinoura, N ;
Kitayama, J ;
Watanabe, T ;
Nagawa, H ;
Hamada, H .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2002, 292 (02) :347-354
[38]   A gene-expression signature can quantify the degree of hepatic fibrosis in the rat [J].
Utsunomiya, T ;
Okamoto, M ;
Hashimoto, M ;
Yoshinaga, K ;
Shiraishi, T ;
Tanaka, F ;
Mimori, K ;
Inoue, H ;
Watanabe, G ;
Barnard, GF ;
Mori, M .
JOURNAL OF HEPATOLOGY, 2004, 41 (03) :399-406
[39]   Apoptosis: Targets in pancreatic cancer [J].
Sabine Westphal ;
Holger Kalthoff .
Molecular Cancer, 2 (1)
[40]   p53 activation in chronic radiation-treated breast cancer cells: Regulation of MDM2/p14ARF [J].
Xia, LQ ;
Paik, A ;
Li, JJ .
CANCER RESEARCH, 2004, 64 (01) :221-228