Gene Fusions Associated with Recurrent Amplicons Represent a Class of Passenger Aberrations in Breast Cancer

被引:54
作者
Kalyana-Sundaram, Shanker [2 ,3 ]
Shankar, Sunita [2 ]
DeRoo, Scott [2 ]
Iyer, Matthew K. [2 ,4 ]
Palanisamy, Nallasivam [2 ]
Chinnaiyan, Arul M. [2 ,4 ,5 ]
Kumar-Sinha, Chandan [1 ,2 ]
机构
[1] Univ Michigan, Sch Med, Dept Pathol, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Michigan Ctr Translat Pathol, Ann Arbor, MI 48109 USA
[3] Bharathidasan Univ, Dept Environm Biotechnol, Tiruchirappalli, Tamil Nadu, India
[4] Univ Michigan, Sch Med, Ctr Comprehens Canc, Ann Arbor, MI USA
[5] Univ Michigan, Howard Hughes Med Inst, Ann Arbor, MI 48109 USA
来源
NEOPLASIA | 2012年 / 14卷 / 08期
基金
美国国家卫生研究院;
关键词
17Q23; AMPLICON; COPY NUMBER; AMPLIFICATION; EXPRESSION; KINASE; GROWTH; LOCALIZATION; RESISTANCE; REVEALS; CENSUS;
D O I
10.1593/neo.12914
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Application of high-throughput transcriptome sequencing has spurred highly sensitive detection and discovery of gene fusions in cancer, but distinguishing potentially oncogenic fusions from random, "passenger" aberrations has proven challenging. Here we examine a distinctive group of gene fusions that involve genes present in the loci of chromosomal amplifications-a class of oncogenic aberrations that are widely prevalent in breast cancers. Integrative analysis of a panel of 14 breast cancer cell lines comparing gene fusions discovered by high-throughput transcriptome sequencing and genome-wide copy number aberrations assessed by array comparative genomic hybridization, led to the identification of 77 gene fusions, of which more than 60% were localized to amplicons including 17q12, 17q23, 20q13, chr8q, and others. Many of these fusions appeared to be recurrent or involved highly expressed oncogenic drivers, frequently fused with multiple different partners, but sometimes displaying loss of functional domains. As illustrative examples of the "amplicon-associated" gene fusions, we examined here a recurrent gene fusion involving the mediator of mammalian target of rapamycin signaling, RPS6KB1 kinase in BT-474, and the therapeutically important receptor tyrosine kinase EGFR in MDA-MB-468 breast cancer cell line. These gene fusions comprise a minor allelic fraction relative to the highly expressed full-length transcripts and encode chimera lacking the kinase domains, which do not impart dependence on the respective cells. Our study suggests that amplicon-associated gene fusions in breast cancer primarily represent a by-product of chromosomal amplifications, which constitutes a subset of passenger aberrations and should be factored accordingly during prioritization of gene fusion candidates.
引用
收藏
页码:702 / +
页数:14
相关论文
共 24 条
[1]  
Bärlund M, 2000, CANCER RES, V60, P5340
[2]   Gemcitabine Overcomes Erlotinib Resistance in EGFR-Overexpressing Cancer Cells through Downregulation of Akt [J].
Bartholomeusz, Chandra ;
Yamasaki, Fumiyuki ;
Saso, Hitomi ;
Kurisu, Kaoru ;
Hortobagyi, Gabriel N. ;
Ueno, Naoto T. .
JOURNAL OF CANCER, 2011, 2 :435-442
[3]   EGFR gene amplification in breast cancer:: correlation with epidermal growth factor receptor mRNA and protein expression and HER-2 status and absence of EGFR-activating mutations [J].
Bhargava, R ;
Gerald, WL ;
Li, AR ;
Pan, QL ;
Lal, P ;
Ladanyi, M ;
Chen, BY .
MODERN PATHOLOGY, 2005, 18 (08) :1027-1033
[4]  
Chinnaiyan AM, 2010, PROG MOL BIOL TRANSL, V95, P55, DOI 10.1016/B978-0-12-385071-3.00004-6
[5]  
Couch FJ, 1999, CANCER RES, V59, P1408
[6]   The genomic and transcriptomic architecture of 2,000 breast tumours reveals novel subgroups [J].
Curtis, Christina ;
Shah, Sohrab P. ;
Chin, Suet-Feung ;
Turashvili, Gulisa ;
Rueda, Oscar M. ;
Dunning, Mark J. ;
Speed, Doug ;
Lynch, Andy G. ;
Samarajiwa, Shamith ;
Yuan, Yinyin ;
Graef, Stefan ;
Ha, Gavin ;
Haffari, Gholamreza ;
Bashashati, Ali ;
Russell, Roslin ;
McKinney, Steven ;
Langerod, Anita ;
Green, Andrew ;
Provenzano, Elena ;
Wishart, Gordon ;
Pinder, Sarah ;
Watson, Peter ;
Markowetz, Florian ;
Murphy, Leigh ;
Ellis, Ian ;
Purushotham, Arnie ;
Borresen-Dale, Anne-Lise ;
Brenton, James D. ;
Tavare, Simon ;
Caldas, Carlos ;
Aparicio, Samuel .
NATURE, 2012, 486 (7403) :346-352
[7]   C-myc amplification in breast cancer: a meta-analysis of its occurrence and prognostic relevance [J].
Deming, SL ;
Nass, SJ ;
Dickson, RB ;
Trock, BJ .
BRITISH JOURNAL OF CANCER, 2000, 83 (12) :1688-1695
[8]   CCND1 amplification and cyclin D1 expression in breast cancer and their relation with proteomic subgroups and patient outcome [J].
Elsheikh, Somaia ;
Green, Andrew R. ;
Aleskandarany, Mohammed A. ;
Grainge, Matthew ;
Paish, Claire E. ;
Lambros, Maryou B. K. ;
Reis-Filho, Jorge S. ;
Ellis, Ian O. .
BREAST CANCER RESEARCH AND TREATMENT, 2008, 109 (02) :325-335
[9]   FGFR1 amplification in breast carcinomas:: a chromogenic in situ hybridisation analysis [J].
Elsheikh, Somaia Elbauomy ;
Green, Andrew R. ;
Lambros, Maryou B. K. ;
Turner, Nicholas C. ;
Grainge, Matthew J. ;
Powe, Des ;
Ellis, Ian O. ;
Reis-Filho, Jorge S. .
BREAST CANCER RESEARCH, 2007, 9 (02)
[10]   A census of human cancer genes [J].
Futreal, PA ;
Coin, L ;
Marshall, M ;
Down, T ;
Hubbard, T ;
Wooster, R ;
Rahman, N ;
Stratton, MR .
NATURE REVIEWS CANCER, 2004, 4 (03) :177-183