Home LiteratureArticle Details
PMID: 21806811 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Inferring causal genomic alterations in breast cancer using gene expression data.

BMC systems biology ·Vol. 5 ·2011-08-01 ·Pages 121

Tran LM, Zhang B, Zhang Z, Zhang C, Xie T, Lamb JR, Dai H, Schadt EE, Zhu J

Abstract

One of the primary objectives in cancer research is to identify causal genomic alterations, such as somatic copy number variation (CNV) and somatic mutations, during tumor development. Many valuable studies lack genomic data to detect CNV; therefore, methods that are able to infer CNVs from gene expression data would help maximize the value of these studies. We developed a framework for identifying recurrent regions of CNV and distinguishing the cancer driver genes from the passenger genes in the regions. By inferring CNV regions across many datasets we were able to identify 109 recurrent amplified/deleted CNV regions. Many of these regions are enriched for genes involved in many important processes associated with tumorigenesis and cancer progression. Genes in these recurrent CNV regions were then examined in the context of gene regulatory networks to prioritize putative cancer driver genes. The cancer driver genes uncovered by the framework include not only well-known oncogenes but also a number of novel cancer susceptibility genes validated via siRNA experiments. To our knowledge, this is the first effort to systematically identify and validate drivers for expression based CNV regions in breast cancer. The framework where the wavelet analysis of copy number alteration based on expression coupled with the gene regulatory network analysis, provides a blueprint for leveraging genomic data to identify key regulatory components and gene targets. This integrative approach can be applied to many other large-scale gene expression studies and other novel types of cancer data such as next-generation sequencing based expression (RNA-Seq) as well as CNV data.

MeSH Terms
Algorithms Bayes Theorem Breast Neoplasms/genetics DNA Copy Number Variations/genetics Female Gene Regulatory Networks/genetics Genes, Neoplasm/genetics Humans Mutation/genetics RNA, Small Interfering/genetics Systems Biology/methods
Chemicals
RNA, Small Interfering
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Tran Linh M
Sage Bionetworks, Seattle, WA 98109, USA.
Zhang Bin
Zhang Zhan
Zhang Chunsheng
Xie Tao
Lamb John R
Dai Hongyue
Schadt Eric E
Zhu Jun
References (53)
53 references, click to expand
  1. Automated network analysis identifies core pathways in glioblastoma.
    PLoS One. 2010 Feb 12;5(2):e8918 PMID: 20169195
  2. Gene-expression profiles to predict distant metastasis of lymph-node-negative primary breast cancer.
    Lancet. 2005 Feb 19-25;365(9460):671-9 PMID: 15721472
  3. The impact of copy number variation on local gene expression in mouse hematopoietic stem and progenitor cells.
    Nat Genet. 2009 Apr;41(4):430-7 PMID: 19270704
  4. High-resolution genomic and expression analyses of copy number alterations in breast tumors.
    Genes Chromosomes Cancer. 2008 Jun;47(6):530-42 PMID: 18335499
  5. A general framework for weighted gene co-expression network analysis.
    Stat Appl Genet Mol Biol. 2005;4:Article17 PMID: 16646834
  6. Identification of rare cancer driver mutations by network reconstruction.
    Genome Res. 2009 Sep;19(9):1570-8 PMID: 19574499
  7. Quantitative proteomics study of breast cancer cell lines isolated from a single patient: discovery of TIMM17A as a marker for breast cancer.
    Proteomics. 2010 Apr;10(7):1374-90 PMID: 20198662
  8. An integrated approach to uncover drivers of cancer.
    Cell. 2010 Dec 10;143(6):1005-17 PMID: 21129771
  9. Genetics of gene expression and its effect on disease.
    Nature. 2008 Mar 27;452(7186):423-8 PMID: 18344981
  10. ADP-ribosylation factor 1 controls the activation of the phosphatidylinositol 3-kinase pathway to regulate epidermal growth factor-dependent growth and migration of breast cancer cells.
    J Biol Chem. 2008 Dec 26;283(52):36425-34 PMID: 18990689
  11. FOXA1 in breast cancer.
    Expert Rev Mol Med. 2009 Mar 05;11:e8 PMID: 19261198
  12. Sulfotransferase gene copy number variation: pharmacogenetics and function.
    Cytogenet Genome Res. 2008;123(1-4):205-10 PMID: 19287157
  13. Gene expression profiling in breast cancer: understanding the molecular basis of histologic grade to improve prognosis.
    J Natl Cancer Inst. 2006 Feb 15;98(4):262-72 PMID: 16478745
  14. Concordance among gene-expression-based predictors for breast cancer.
    N Engl J Med. 2006 Aug 10;355(6):560-9 PMID: 16899776
  15. An expression signature for p53 status in human breast cancer predicts mutation status, transcriptional effects, and patient survival.
    Proc Natl Acad Sci U S A. 2005 Sep 20;102(38):13550-5 PMID: 16141321
  16. Small interfering RNA screens reveal enhanced cisplatin cytotoxicity in tumor cells having both BRCA network and TP53 disruptions.
    Mol Cell Biol. 2006 Dec;26(24):9377-86 PMID: 17000754
  17. The third member of the transforming acidic coiled coil-containing gene family, TACC3, maps in 4p16, close to translocation breakpoints in multiple myeloma, and is upregulated in various cancer cell lines.
    Genomics. 1999 Jun 1;58(2):165-70 PMID: 10366448
  18. A large-scale RNAi screen in human cells identifies new components of the p53 pathway.
    Nature. 2004 Mar 25;428(6981):431-7 PMID: 15042092
  19. Survivin: key regulator of mitosis and apoptosis and novel target for cancer therapeutics.
    Clin Cancer Res. 2008 Aug 15;14(16):5000-5 PMID: 18698017
  20. Distinct patterns of DNA copy number alteration are associated with different clinicopathological features and gene-expression subtypes of breast cancer.
    Genes Chromosomes Cancer. 2006 Nov;45(11):1033-40 PMID: 16897746
  21. The TACC proteins: TACC-ling microtubule dynamics and centrosome function.
    Trends Cell Biol. 2008 Aug;18(8):379-88 PMID: 18656360
  22. Gene expression profiling predicts clinical outcome of breast cancer.
    Nature. 2002 Jan 31;415(6871):530-6 PMID: 11823860
  23. Breast tumor copy number aberration phenotypes and genomic instability.
    BMC Cancer. 2006 Apr 18;6:96 PMID: 16620391
  24. Utilizing the molecular gateway: the path to personalized cancer management.
    Clin Chem. 2009 Apr;55(4):684-97 PMID: 19246616
  25. Causal inference of regulator-target pairs by gene mapping of expression phenotypes.
    BMC Genomics. 2006 May 24;7:125 PMID: 16719927
  26. An integrative genomics approach to the reconstruction of gene networks in segregating populations.
    Cytogenet Genome Res. 2004;105(2-4):363-74 PMID: 15237224
  27. Coexpression network analysis of neural tissue reveals perturbations in developmental processes in schizophrenia.
    Genome Res. 2010 Apr;20(4):403-12 PMID: 20197298
  28. Expression profiling reveals off-target gene regulation by RNAi.
    Nat Biotechnol. 2003 Jun;21(6):635-7 PMID: 12754523
  29. Elucidating the murine brain transcriptional network in a segregating mouse population to identify core functional modules for obesity and diabetes.
    J Neurochem. 2006 Apr;97 Suppl 1:50-62 PMID: 16635250
  30. MTDH activation by 8q22 genomic gain promotes chemoresistance and metastasis of poor-prognosis breast cancer.
    Cancer Cell. 2009 Jan 6;15(1):9-20 PMID: 19111877
  31. Increasing the power to detect causal associations by combining genotypic and expression data in segregating populations.
    PLoS Comput Biol. 2007 Apr 13;3(4):e69 PMID: 17432931
  32. Stathmin 1: a novel therapeutic target for anticancer activity.
    Expert Rev Anticancer Ther. 2008 Sep;8(9):1461-70 PMID: 18759697
  33. Microarray analyses reveal strong influence of DNA copy number alterations on the transcriptional patterns in pancreatic cancer: implications for the interpretation of genomic amplifications.
    Oncogene. 2005 Mar 3;24(10):1794-801 PMID: 15688027
  34. Network-based prediction of protein function.
    Mol Syst Biol. 2007;3:88 PMID: 17353930
  35. Integrating large-scale functional genomic data to dissect the complexity of yeast regulatory networks.
    Nat Genet. 2008 Jul;40(7):854-61 PMID: 18552845
  36. In vivo dynamics and distinct functions of hypoxia in primary tumor growth and organotropic metastasis of breast cancer.
    Cancer Res. 2010 May 15;70(10):3905-14 PMID: 20442288
  37. Estrogen receptor gene analysis in estrogen receptor-positive and receptor-negative primary breast cancer.
    J Natl Cancer Inst. 1995 Mar 15;87(6):446-51 PMID: 7861463
  38. The cancer genome.
    Nature. 2009 Apr 9;458(7239):719-24 PMID: 19360079
  39. Relative impact of nucleotide and copy number variation on gene expression phenotypes.
    Science. 2007 Feb 9;315(5813):848-53 PMID: 17289997
  40. Integrating genotypic and expression data in a segregating mouse population to identify 5-lipoxygenase as a susceptibility gene for obesity and bone traits.
    Nat Genet. 2005 Nov;37(11):1224-33 PMID: 16200066
  41. Genome-wide profiling of genetic alterations in acute lymphoblastic leukemia: recent insights and future directions.
    Leukemia. 2009 Jul;23(7):1209-18 PMID: 19242497
  42. Systematic genetic and genomic analysis of cytochrome P450 enzyme activities in human liver.
    Genome Res. 2010 Aug;20(8):1020-36 PMID: 20538623
  43. Microarray analysis reveals a major direct role of DNA copy number alteration in the transcriptional program of human breast tumors.
    Proc Natl Acad Sci U S A. 2002 Oct 1;99(20):12963-8 PMID: 12297621
  44. Molecular characterization of breast cancer with high-resolution oligonucleotide comparative genomic hybridization array.
    Clin Cancer Res. 2009 Jan 15;15(2):441-51 PMID: 19147748
  45. Localization of human TACC3 to mitotic spindles is mediated by phosphorylation on Ser558 by Aurora A: a novel pharmacodynamic method for measuring Aurora A activity.
    Cancer Res. 2007 Jun 1;67(11):5362-70 PMID: 17545617
  46. Identification of high-quality cancer prognostic markers and metastasis network modules.
    Nat Commun. 2010 Jul 13;1:34 PMID: 20975711
  47. Mechanisms of change in gene copy number.
    Nat Rev Genet. 2009 Aug;10(8):551-64 PMID: 19597530
  48. An integrative genomics approach to infer causal associations between gene expression and disease.
    Nat Genet. 2005 Jul;37(7):710-7 PMID: 15965475
  49. Human TPX2 is required for targeting Aurora-A kinase to the spindle.
    J Cell Biol. 2002 Aug 19;158(4):617-23 PMID: 12177045
  50. Network modeling of the transcriptional effects of copy number aberrations in glioblastoma.
    Mol Syst Biol. 2011 Apr 26;7:486 PMID: 21525872
  51. Aurora kinase family: a new target for anticancer drug.
    Recent Pat Anticancer Drug Discov. 2008 Jun;3(2):114-22 PMID: 18537754
  52. Molecular classification of solid tumours: towards pathway-driven therapeutics.
    Br J Cancer. 2009 May 19;100(10):1517-22 PMID: 19367275
  53. Transforming acidic coiled-coil 3 and Aurora-A interact in human thyrocytes and their expression is deregulated in thyroid cancer tissues.
    Endocr Relat Cancer. 2007 Sep;14(3):827-37 PMID: 17914111
Article Info
Journal
BMC systems biology
Abbr.
BMC Syst Biol
ISSN
1752-0509
Published
2011-08-01
Epub
2011-00-01
Pages
121
Language
English
Region
England
NLM ID
101301827
PMCID
PMC3162519
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com