FAS Death Receptor: A Breast Cancer Subtype-Specific Radiation Response Biomarker and Potential Therapeutic Target

被引:27
作者
Horton, Janet K. [1 ]
Siamakpour-Reihani, Sharareh [1 ]
Lee, Chen-Ting [1 ]
Zhou, Ying [1 ]
Chen, Wei [2 ]
Geradts, Joseph [3 ]
Fels, Diane R. [1 ]
Hoang, Peter [1 ]
Ashcraft, Kathleen A. [1 ]
Groth, Jeff [3 ]
Kung, Hsiu-Ni [4 ,5 ]
Dewhirst, Mark W. [1 ]
Chi, Jen-Tsan A. [4 ,5 ]
机构
[1] Duke Univ, Med Ctr, Duke Canc Inst, Dept Radiat Oncol, Durham, NC 27710 USA
[2] Duke Univ, Med Ctr, Duke Canc Inst, Dept Bioinformat, Durham, NC 27710 USA
[3] Duke Univ, Med Ctr, Dept Pathol, Durham, NC 27710 USA
[4] Duke Univ, Med Ctr, Dept Mol Genet & Microbiol, Durham, NC 27710 USA
[5] Duke Univ, Med Ctr, Ctr Genom & Computat Biol, Durham, NC 27710 USA
关键词
CELL-LINES; NEOADJUVANT CHEMOTHERAPY; PROGESTERONE-RECEPTOR; ESTROGEN-RECEPTOR; GENE-EXPRESSION; C-JUN; APOPTOSIS; SYSTEM; RESISTANCE; SIGNATURE;
D O I
10.1667/RR14089.1
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Although a standardized approach to radiotherapy has been used to treat breast cancer, regardless of subtype (e.g., luminal, basal), recent clinical data suggest that radiation response may vary significantly among subtypes. We hypothesized that this clinical variability may be due, in part, to differences in cellular radiation response. In this study, we utilized RNA samples for microarray analysis from two sources: 1. Paired pre- and postirradiation breast tumor tissue from 32 early-stage breast cancer patients treated in our unique preoperative radiation Phase I trial; and 2. Sixteen biologically diverse breast tumor cell lines exposed to 0 and 5 Gy irradiation. The transcriptome response to radiation exposure was derived by comparing gene expression in samples before and after irradiation. Genes with the highest coefficient of variation were selected for further evaluation and validated at the RNA and protein level. Gene editing and agonistic antibody treatment were performed to assess the impact of gene modulation on radiation response. Gene expression in our cohort of luminal breast cancer patients was distinctly different before and after irradiation. Further, two distinct patterns of gene expression were observed in our biologically diverse group of breast cancer cell lines pre- versus postirradiation. Cell lines that showed significant change after irradiation were largely luminal subtype, while gene expression in the basal and HER2(+) cell lines was minimally impacted. The 100 genes with the most significant response to radiation in patients were identified and analyzed for differential patterns of expression in the radiation-responsive versus nonresponsive cell lines. Four-teen genes were identified as significant, including FAS, a member of the tumor necrosis factor receptor family known to play a critical role in programed cell death. Modulation of FAS in breast cancer cell lines altered radiation response phenotype and enhanced radiation sensitivity in radioresistant basal cell lines. Our findings suggest that cell-type-specific, radiation-induced FAS contributes to subtype-specific breast cancer radiation response and that activation of FAS pathways may be exploited for biologically tailored radiotherapy. (C) 2015 by Radiation Research Society
引用
收藏
页码:456 / 469
页数:14
相关论文
共 48 条
[1]   Integrating global gene expression and radiation survival parameters across the 60 cell lines of the National Cancer Institute Anticancer Drug Screen [J].
Amundson, Sally A. ;
Do, Khanh T. ;
Vinikoor, Lisa C. ;
Lee, R. Anthony ;
Koch-Paiz, Christine A. ;
Ahn, Jaeyong ;
Reimers, Mark ;
Chen, Yidong ;
Scudiero, Dominic A. ;
Weinstein, John N. ;
Trent, Jeffrey M. ;
Bittner, Michael L. ;
Meltzer, Paul S. ;
Fornace, Albert J., Jr. .
CANCER RESEARCH, 2008, 68 (02) :415-424
[2]   NCBI GEO: archive for functional genomics data sets-update [J].
Barrett, Tanya ;
Wilhite, Stephen E. ;
Ledoux, Pierre ;
Evangelista, Carlos ;
Kim, Irene F. ;
Tomashevsky, Maxim ;
Marshall, Kimberly A. ;
Phillippy, Katherine H. ;
Sherman, Patti M. ;
Holko, Michelle ;
Yefanov, Andrey ;
Lee, Hyeseung ;
Zhang, Naigong ;
Robertson, Cynthia L. ;
Serova, Nadezhda ;
Davis, Sean ;
Soboleva, Alexandra .
NUCLEIC ACIDS RESEARCH, 2013, 41 (D1) :D991-D995
[3]   Cell surface trafficking of Fas: A rapid mechanism of p53-mediated apoptosis [J].
Bennett, M ;
Macdonald, K ;
Chan, SW ;
Luzio, JP ;
Simari, R ;
Weissberg, P .
SCIENCE, 1998, 282 (5387) :290-293
[4]   Altered expression of FAS system is related to adverse clinical outcome in stage I-II breast cancer patients treated with adjuvant anthracycline-based chemotherapy [J].
Botti, C ;
Buglioni, S ;
Benevolo, M ;
Giannarelli, D ;
Papaldo, P ;
Cognetti, F ;
Vici, P ;
Di Filippo, F ;
Del Nonno, F ;
Venanzi, FM ;
Natali, PG ;
Mottolese, M .
CLINICAL CANCER RESEARCH, 2004, 10 (04) :1360-1365
[5]   A system for stable expression of short interfering RNAs in mammalian cells [J].
Brummelkamp, TR ;
Bernards, R ;
Agami, R .
SCIENCE, 2002, 296 (5567) :550-553
[6]   The triple negative paradox: Primary tumor chemosensitivity of breast cancer subtypes [J].
Carey, Lisa A. ;
Dees, E. Claire ;
Sawyer, Lynda ;
Gatti, Lisa ;
Moore, Dominic T. ;
Collichio, Frances ;
Ollila, David W. ;
Sartor, Carolyn I. ;
Graham, Mark L. ;
Perou, Charles M. .
CLINICAL CANCER RESEARCH, 2007, 13 (08) :2329-2334
[7]   Evidence for Phenotypic Plasticity in Aggressive Triple-Negative Breast Cancer: Human Biology Is Recapitulated by a Novel Model System [J].
D'Amato, Nicholas C. ;
Ostrander, Julie H. ;
Bowie, Michelle L. ;
Sistrunk, Christopher ;
Borowsky, Alexander ;
Cardiff, Robert D. ;
Bell, Katie ;
Young, Lawrence J. T. ;
Simin, Karl ;
Bachelder, Robin E. ;
Delrow, Jeff ;
Dawson, Alyssa ;
Yee, Lisa D. ;
Mrozek, Krzysztof ;
Clay, Timothy M. ;
Osada, Takuya ;
Seewaldt, Victoria L. .
PLOS ONE, 2012, 7 (09)
[8]   Effect of radiotherapy after breast-conserving surgery on 10-year recurrence and 15-year breast cancer death: meta-analysis of individual patient data for 10 801 women in 17 randomised trials [J].
Darby S. ;
McGale P. ;
Correa C. ;
Taylor C. ;
Arriagada R. ;
Clarke M. ;
Cutter D. ;
Davies C. ;
Ewertz M. ;
Godwin J. ;
Gray R. ;
Pierce L. ;
Whelan T. ;
Wang Y. ;
Peto R. ;
Albain K. ;
Anderson S. ;
Barlow W. ;
Bergh J. ;
Bliss J. ;
Buyse M. ;
Cameron D. ;
Carrasco E. ;
Coates A. ;
Collins R. ;
Costantino J. ;
Cuzick J. ;
Davidson N. ;
Davies K. ;
Delmestri A. ;
Di Leo A. ;
Dowsett M. ;
Elphinstone P. ;
Evans V. ;
Gelber R. ;
Gettins L. ;
Geyer C. ;
Goldhirsch A. ;
Gregory C. ;
Hayes D. ;
Hill C. ;
Ingle J. ;
Jakesz R. ;
James S. ;
Kaufmann M. ;
Kerr A. ;
MacKinnon E. ;
McHugh T. ;
Norton L. ;
Ohashi Y. .
LANCET, 2011, 378 (9804) :1707-1716
[9]   Validation of a Radiosensitivity Molecular Signature in Breast Cancer [J].
Eschrich, Steven A. ;
Fulp, William J. ;
Pawitan, Yudi ;
Foekens, John A. ;
Smid, Marcel ;
Martens, John W. M. ;
Echevarria, Michelle ;
Kamath, Vidya ;
Lee, Ji-Hyun ;
Harris, Eleanor E. ;
Bergh, Jonas ;
Torres-Roca, Javier F. .
CLINICAL CANCER RESEARCH, 2012, 18 (18) :5134-5143
[10]   Mn porphyrin in combination with ascorbate acts as a pro-oxidant and mediates caspase-independent cancer cell death [J].
Evans, Myron K. ;
Tovmasyan, Artak ;
Batinic-Haberle, Ines ;
Devi, Gayathri R. .
FREE RADICAL BIOLOGY AND MEDICINE, 2014, 68 :302-314