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PMID: 21437235 Published · epublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Oncogene activation induces metabolic transformation resulting in insulin-independence in human breast cancer cells.

PloS one ·Vol. 6 ·No. 3 ·2011-03-17 ·Pages e17959

Bollig-Fischer A, Dewey TG, Ethier SP

Abstract

Normal breast epithelial cells require insulin and EGF for growth in serum-free media. We previously demonstrated that over expression of breast cancer oncogenes transforms MCF10A cells to an insulin-independent phenotype. Additionally, most breast cancer cell lines are insulin-independent for growth. In this study, we investigated the mechanism by which oncogene over expression transforms MCF10A cells to an insulin-independent phenotype. Analysis of the effects of various concentrations of insulin and/or IGF-I on proliferation of MCF10A cells demonstrated that some of the effects of insulin were independent from those of IGF-I, suggesting that oncogene over expression drives a true insulin-independent proliferative phenotype. To test this hypothesis, we examined metabolic functions of insulin signaling in insulin-dependent and insulin-independent cells. HER2 over expression in MCF10A cells resulted in glucose uptake in the absence of insulin at a rate equal to insulin-induced glucose uptake in non-transduced cells. We found that a diverse set of oncogenes induced the same result. To gain insight into how HER2 oncogene signaling affected increased insulin-independent glucose uptake we compared HER2-regulated gene expression signatures in MCF10A and HER2 over expressing MCF10A cells by differential analysis of time series gene expression data from cells treated with a HER2 inhibitor. This analysis identified genes specifically regulated by the HER2 oncogene, including VAMP8 and PHGDH, which have known functions in glucose uptake and processing of glycolytic intermediates, respectively. Moreover, these genes specifically implicated in HER2 oncogene-driven transformation are commonly altered in human breast cancer cells. These results highlight the diversity of oncogene effects on cell regulatory pathways and the importance of oncogene-driven metabolic transformation in breast cancer.

MeSH Terms
Breast Neoplasms/enzymology,genetics,metabolism,pathology Cell Proliferation/drug effects Cell Transformation, Neoplastic/drug effects,genetics,metabolism,pathology Female Gene Expression Regulation, Neoplastic/drug effects Glucose/metabolism Glucose Transporter Type 4/metabolism Humans Insulin/metabolism,pharmacology Oncogenes/genetics Phenotype Phosphoglycerate Dehydrogenase/genetics,metabolism Protein Transport/drug effects Receptor, ErbB-2/metabolism Signal Transduction/drug effects Up-Regulation/drug effects Vesicle-Associated Membrane Protein 2/metabolism
Chemicals
Glucose Transporter Type 4 Insulin SLC2A4 protein, human VAMP2 protein, human Vesicle-Associated Membrane Protein 2 Phosphoglycerate Dehydrogenase Receptor, ErbB-2 Glucose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Bollig-Fischer Aliccia
Department of Oncology, Wayne State University School of Medicine, Detroit, Michigan, United States of America.
Dewey T Gregory
Ethier Stephen P
References (47)
47 references, click to expand
  1. A hypoxia-independent hypoxia-inducible factor-1 activation pathway induced by phosphatidylinositol-3 kinase/Akt in HER2 overexpressing cells.
    Cancer Res. 2005 Apr 15;65(8):3257-63 PMID: 15833858
  2. Hypoxia-inducible factor 1: regulator of mitochondrial metabolism and mediator of ischemic preconditioning.
    Biochim Biophys Acta. 2011 Jul;1813(7):1263-8 PMID: 20732359
  3. A mitochondria-K+ channel axis is suppressed in cancer and its normalization promotes apoptosis and inhibits cancer growth.
    Cancer Cell. 2007 Jan;11(1):37-51 PMID: 17222789
  4. The M2 splice isoform of pyruvate kinase is important for cancer metabolism and tumour growth.
    Nature. 2008 Mar 13;452(7184):230-3 PMID: 18337823
  5. Insulin, insulin-like growth factor-I, and risk of breast cancer in postmenopausal women.
    J Natl Cancer Inst. 2009 Jan 7;101(1):48-60 PMID: 19116382
  6. Mapping of R-SNARE function at distinct intracellular GLUT4 trafficking steps in adipocytes.
    J Cell Biol. 2008 Jan 28;180(2):375-87 PMID: 18227281
  7. Understanding the Warburg effect: the metabolic requirements of cell proliferation.
    Science. 2009 May 22;324(5930):1029-33 PMID: 19460998
  8. Tumor-specific positron emission tomography imaging in patients: [18F] fluorodeoxyglucose and beyond.
    Clin Cancer Res. 2007 Jun 15;13(12):3460-9 PMID: 17575208
  9. Absence of the Birt-Hogg-Dubé gene product is associated with increased hypoxia-inducible factor transcriptional activity and a loss of metabolic flexibility.
    Oncogene. 2011 Mar 10;30(10):1159-73 PMID: 21057536
  10. Cooperative interactions of HER-2 and HPV-16 oncoproteins in the malignant transformation of human mammary epithelial cells.
    Neoplasia. 2005 Aug;7(8):788-98 PMID: 16207481
  11. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method.
    Methods. 2001 Dec;25(4):402-8 PMID: 11846609
  12. Changes in human endothelial cell energy metabolic capacities during in vitro cultivation. The role of "aerobic glycolysis" and proliferation.
    Cell Physiol Biochem. 2009;24(5-6):483-92 PMID: 19910688
  13. On the origin of cancer cells.
    Science. 1956 Feb 24;123(3191):309-14 PMID: 13298683
  14. The molecular basis of insulin-stimulated glucose uptake: signalling, trafficking and potential drug targets.
    J Endocrinol. 2009 Oct;203(1):1-18 PMID: 19389739
  15. Variations in the requirement for v-SNAREs in GLUT4 trafficking in adipocytes.
    J Cell Sci. 2009 Oct 1;122(Pt 19):3472-80 PMID: 19759285
  16. Ras inhibition in glioblastoma down-regulates hypoxia-inducible factor-1alpha, causing glycolysis shutdown and cell death.
    Cancer Res. 2005 Feb 1;65(3):999-1006 PMID: 15705901
  17. Differential isolation of normal luminal mammary epithelial cells and breast cancer cells from primary and metastatic sites using selective media.
    Cancer Res. 1993 Feb 1;53(3):627-35 PMID: 8425198
  18. Transcription factor CHF1/Hey2 regulates the global transcriptional response to platelet-derived growth factor in vascular smooth muscle cells.
    Physiol Genomics. 2007 Jun 19;30(1):61-8 PMID: 17327490
  19. Insulin and insulin-like growth factor (somatomedin) receptors on cloned rat pituitary tumor cells.
    Endocrinology. 1985 Nov;117(5):2008-16 PMID: 2995005
  20. Beyond aerobic glycolysis: transformed cells can engage in glutamine metabolism that exceeds the requirement for protein and nucleotide synthesis.
    Proc Natl Acad Sci U S A. 2007 Dec 4;104(49):19345-50 PMID: 18032601
  21. The biology of cancer: metabolic reprogramming fuels cell growth and proliferation.
    Cell Metab. 2008 Jan;7(1):11-20 PMID: 18177721
  22. Glycolytic phenotype in breast cancer: activation of Akt, up-regulation of GLUT1, TKTL1 and down-regulation of M2PK.
    J Cancer Res Clin Oncol. 2010 Feb;136(2):219-25 PMID: 19655166
  23. Transforming properties of TC-1 in human breast cancer: interaction with FGFR2 and beta-catenin signaling pathways.
    Int J Cancer. 2007 Sep 15;121(6):1265-73 PMID: 17520678
  24. The transcription factor HIF-1alpha plays a critical role in the growth factor-dependent regulation of both aerobic and anaerobic glycolysis.
    Genes Dev. 2007 May 1;21(9):1037-49 PMID: 17437992
  25. erbB family receptor expression and growth regulation in a newly isolated human breast cancer cell line.
    Cancer Res. 1996 Feb 15;56(4):899-907 PMID: 8631031
  26. Molecular cytogenetic analysis of 11 new breast cancer cell lines.
    Br J Cancer. 1999 Dec;81(8):1328-34 PMID: 10604729
  27. erbB-2 overexpression in human mammary epithelial cells confers growth factor independence.
    Endocrinology. 1999 Aug;140(8):3615-22 PMID: 10433219
  28. Enhanced serine production by bone metastatic breast cancer cells stimulates osteoclastogenesis.
    Breast Cancer Res Treat. 2011 Jan;125(2):421-30 PMID: 20352489
  29. Aerobic glycolysis during lymphocyte proliferation.
    Nature. 1976 Jun 24;261(5562):702-5 PMID: 934318
  30. HER-2 signaling, acquisition of growth factor independence, and regulation of biological networks associated with cell transformation.
    Cancer Res. 2010 Oct 15;70(20):7862-73 PMID: 20736364
  31. Multiple interacting oncogenes on the 8p11-p12 amplicon in human breast cancer.
    Cancer Res. 2006 Dec 15;66(24):11632-43 PMID: 17178857
  32. Myc regulates a transcriptional program that stimulates mitochondrial glutaminolysis and leads to glutamine addiction.
    Proc Natl Acad Sci U S A. 2008 Dec 2;105(48):18782-7 PMID: 19033189
  33. Upregulation of lactate dehydrogenase A by ErbB2 through heat shock factor 1 promotes breast cancer cell glycolysis and growth.
    Oncogene. 2009 Oct 22;28(42):3689-701 PMID: 19668225
  34. ATP-citrate lyase links cellular metabolism to histone acetylation.
    Science. 2009 May 22;324(5930):1076-80 PMID: 19461003
  35. Regulation of the Warburg effect in early-passage breast cancer cells.
    Neoplasia. 2008 Aug;10(8):745-56 PMID: 18670636
  36. Akt-directed glucose metabolism can prevent Bax conformation change and promote growth factor-independent survival.
    Mol Cell Biol. 2003 Oct;23(20):7315-28 PMID: 14517300
  37. Molecular characterization of 3-phosphoglycerate dehydrogenase deficiency--a neurometabolic disorder associated with reduced L-serine biosynthesis.
    Am J Hum Genet. 2000 Dec;67(6):1389-99 PMID: 11055895
  38. Xenograft model of progressive human proliferative breast disease.
    J Natl Cancer Inst. 1993 Nov 3;85(21):1725-32 PMID: 8411256
  39. Insulin-mediated acceleration of breast cancer development and progression in a nonobese model of type 2 diabetes.
    Cancer Res. 2010 Jan 15;70(2):741-51 PMID: 20068149
  40. SUM-159PT cells: a novel estrogen independent human breast cancer model system.
    Breast Cancer Res Treat. 1999 Dec;58(3):193-204 PMID: 10718481
  41. The phosphatidylinositol 3-kinase alpha is required for DNA synthesis induced by some, but not all, growth factors.
    Proc Natl Acad Sci U S A. 1994 Sep 13;91(19):9185-9 PMID: 8090789
  42. Molecular and cellular regulation of glucose transporter (GLUT) proteins in cancer.
    J Cell Physiol. 2005 Mar;202(3):654-62 PMID: 15389572
  43. Glutamine and glucose metabolism during thymocyte proliferation. Pathways of glutamine and glutamate metabolism.
    Biochem J. 1985 Jun 1;228(2):353-61 PMID: 2861809
  44. Vmax regulation through domain and subunit changes. The active form of phosphoglycerate dehydrogenase.
    Biochemistry. 2005 Apr 19;44(15):5763-73 PMID: 15823035
  45. Tumor cell metabolism: cancer's Achilles' heel.
    Cancer Cell. 2008 Jun;13(6):472-82 PMID: 18538731
  46. ErbB2 promotes Src synthesis and stability: novel mechanisms of Src activation that confer breast cancer metastasis.
    Cancer Res. 2005 Mar 1;65(5):1858-67 PMID: 15753384
  47. Activation of the Akt/mammalian target of rapamycin/4E-BP1 pathway by ErbB2 overexpression predicts tumor progression in breast cancers.
    Clin Cancer Res. 2004 Oct 15;10(20):6779-88 PMID: 15501954
Article Info
Journal
PloS one
Abbr.
PLoS One
ISSN
1932-6203
Published
2011-03-17
Epub
2011-00-17
Pages
e17959
Language
English
Region
United States
NLM ID
101285081
PMCID
PMC3060101
Subset
IM
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