The HER2 amplicon includes several genes required for the growth and survival of HER2 positive breast cancer cells

被引:77
作者
Sahlberg, Kristine Kleivi [1 ,2 ]
Hongisto, Vesa [2 ]
Edgren, Henrik [3 ]
Makela, Rami [2 ]
Hellstrom, Kirsi [2 ]
Due, Eldri U. [1 ]
Vollan, Hans Kristian Moen [1 ,4 ,5 ]
Sahlberg, Niko [2 ]
Wolf, Maija [3 ]
Borresen-Dale, Anne-Lise [1 ,4 ]
Perala, Merja [2 ]
Kallioniemi, Olli [2 ,3 ]
机构
[1] Norwegian Radium Hosp, Oslo Univ Hosp, Inst Canc Res, Dept Genet,Div Surg & Canc, N-0310 Oslo, Norway
[2] VTT Tech Res Ctr Finland, Turku, Finland
[3] Univ Helsinki, Inst Mol Med Finland FIMM, Helsinki, Finland
[4] Univ Oslo, Inst Clin Med, Fac Med, N-0318 Oslo, Norway
[5] Oslo Univ Hosp, Dept Breast & Endocrine Surg, Div Surg & Canc, N-0450 Oslo, Norway
基金
芬兰科学院;
关键词
HER2-amplicon; Breast cancer; HER2; positive; siRNA; Trastuzumab; Lapatinib; Drug resistance; 17q12; COPY NUMBER ALTERATIONS; TRASTUZUMAB RESISTANCE; T-DARPP; EXPRESSION; IDENTIFICATION; INHIBITORS; ONCOGENES;
D O I
10.1016/j.molonc.2012.10.012
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
About 20% of breast cancers are characterized by amplification and overexpression of the HER2 oncogene. Although significant progress has been achieved for treating such patients with HER2 inhibitor trastuzumab, more than half of the patients respond poorly or become resistant to the treatment. Since the HER2 amplicon at 17q12 contains multiple genes, we have systematically explored the role of the HER2 co-amplified genes in breast cancer cell growth and their relation to trastuzumab resistance. We integrated aCGH data of the HER2 amplicon from 71 HER2 positive breast tumors and 10 cell lines with systematic functional RNA interference analysis of 23 core amplicon genes with several phenotypic endpoints in a panel of trastuzumab responding and non-responding HER2 positive breast cancer cells. Silencing of HER2 caused a greater growth arrest and apoptosis in the responding compared to the non-responding cell lines, indicating that the resistant cells are inherently less dependent on the HER2 pathway. Several other genes in the amplicon also showed a more pronounced effect when silenced; indicating that expression of HER2 co-amplified genes may be needed to sustain the growth of breast cancer cells. Importantly, co-silencing of STARD3, GRB7, PSMD3 and PERLD1 together with HER2 led to an additive inhibition of cell viability as well as induced apoptosis. These studies indicate that breast cancer cells may become addicted to the amplification of several genes that reside in the HER2 amplicon. The simultaneous targeting of these genes may increase the efficacy of the anti-HER2 therapies and possibly also counteract trastuzumab resistance. The observed additive effects seem to culminate to both apoptosis and cell proliferation pathways indicating that these pathways may be interesting targets for combinatorial treatment of HER2+ breast cancers. (C) 2012 Federation of European Biochemical Societies. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:392 / 401
页数:10
相关论文
共 33 条
[1]   Lapatinib with trastuzumab for HER2-positive early breast cancer (NeoALTTO): a randomised, open-label, multicentre, phase 3 trial [J].
Baselga, Jose ;
Bradbury, Ian ;
Eidtmann, Holger ;
Di Cosimo, Serena ;
de Azambuja, Evandro ;
Aura, Claudia ;
Gomez, Henry ;
Dinh, Phuong ;
Fauria, Karine ;
Van Dooren, Veerle ;
Aktan, Gursel ;
Goldhirsch, Aron ;
Chang, Tsai-Wang ;
Horvath, Zsolt ;
Coccia-Portugal, Maria ;
Domont, Julien ;
Tseng, Ling-Min ;
Kunz, Georg ;
Sohn, Joo Hyuk ;
Semiglazov, Vladimir ;
Lerzo, Guillermo ;
Palacova, Marketa ;
Probachai, Volodymyr ;
Pusztai, Lajos ;
Untch, Michael ;
Gelber, Richard D. ;
Piccart-Gebhart, Martine .
LANCET, 2012, 379 (9816) :633-640
[2]  
Bates M., 2011, ANN ONCOL
[3]   Comparison of the Agilent, ROMA/NimbleGen and Illumina platforms for classification of copy number alterations in human breast tumors [J].
Baumbusch, L. O. ;
Aaroe, J. ;
Johansen, F. E. ;
Hicks, J. ;
Sun, H. ;
Bruhn, L. ;
Gunderson, K. ;
Naume, B. ;
Kristensen, V. N. ;
Liestol, K. ;
Borresen-Dale, A-L ;
Lingjaerde, O. C. .
BMC GENOMICS, 2008, 9 (1)
[4]   Expression of t-DARPP mediates trastuzumab resistance in breast cancer cells [J].
Belkhiri, Abbes ;
Dar, Altaf A. ;
Peng, DunFa ;
Razvi, Mohammad H. ;
Rinehart, Cammie ;
Arteaga, Carlos L. ;
El-Rifai, Wael .
CLINICAL CANCER RESEARCH, 2008, 14 (14) :4564-4571
[5]   A functional genetic approach identifies the PI3K pathway as a major determinant of trastuzumab resistance in breast cancer [J].
Berns, Katrien ;
Horlings, Hugo M. ;
Hennessy, Bryan T. ;
Madiredjo, Mandy ;
Hijmans, E. Marielle ;
Beelen, Karin ;
Linn, Sabine C. ;
Gonzalez-Angulo, Ana Maria ;
Stemke-Hale, Katherine ;
Hauptmann, Michael ;
Beijersbergen, Roderick L. ;
Mills, Gordon B. ;
de Vijver, Marc J. van ;
Bernards, Rene .
CANCER CELL, 2007, 12 (04) :395-402
[6]   Resistance to HER2 inhibitors: Is addition better than substitution? Rationale for the hypothetical concept of drug sedimentation [J].
Campone, Mario ;
Juin, Philippe ;
Andre, Fabrice ;
Bachelot, Thomas .
CRITICAL REVIEWS IN ONCOLOGY HEMATOLOGY, 2011, 78 (03) :195-205
[7]   Identification of fusion genes in breast cancer by paired-end RNA-sequencing [J].
Edgren, Henrik ;
Murumagi, Astrid ;
Kangaspeska, Sara ;
Nicorici, Daniel ;
Hongisto, Vesa ;
Kleivi, Kristine ;
Rye, Inga H. ;
Nyberg, Sandra ;
Wolf, Maija ;
Borresen-Dale, Anne-Lise ;
Kallioniemi, Olli .
GENOME BIOLOGY, 2011, 12 (01)
[8]   Pilot study of the mechanism of action of preoperative trastuzumab in patients with primary operable breast tumors overexpressing HER2 [J].
Gennari, R ;
Menard, S ;
Fagnoni, F ;
Ponchio, L ;
Scelsi, M ;
Tagliabue, E ;
Castiglioni, F ;
Villani, L ;
Magalotti, C ;
Gibelli, N ;
Oliviero, B ;
Ballardini, B ;
Da Prada, G ;
Zambelli, A ;
Costa, A .
CLINICAL CANCER RESEARCH, 2004, 10 (17) :5650-5655
[9]   Both t-Darpp and DARPP-32 can cause resistance to trastuzumab in breast cancer cells and are frequently expressed in primary breast cancers [J].
Hamel, Sophie ;
Bouchard, Amelie ;
Ferrario, Cristiano ;
Hassan, Saima ;
Aguilar-Mahecha, Adriana ;
Buchanan, Marguerite ;
Quenneville, Louise ;
Miller, Wilson ;
Basik, Mark .
BREAST CANCER RESEARCH AND TREATMENT, 2010, 120 (01) :47-57
[10]   ERBB receptors and cancer: The complexity of targeted inhibitors [J].
Hynes, NE ;
Lane, HA .
NATURE REVIEWS CANCER, 2005, 5 (05) :341-354