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PMID: 21691718 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Review

Deconstructing the mechanisms and consequences of TGF-β-induced EMT during cancer progression.

Cell and tissue research ·Vol. 347 ·No. 1 ·2012-01-00 ·Pages 85-101

Wendt MK, Tian M, Schiemann WP

Abstract

Transforming growth factor-β (TGF-β) is a potent pleiotropic cytokine that regulates mammalian development, differentiation, and homeostasis in essentially all cell types and tissues. TGF-β normally exerts anticancer activities by prohibiting cell proliferation and by creating cell microenvironments that inhibit cell motility, invasion, and metastasis. However, accumulating evidence indicates that the process of tumorigenesis, particularly that associated with metastatic progression, confers TGF-β with oncogenic activities, a functional switch known as the "TGF-β paradox." The molecular determinants governing the TGF-β paradox are complex and represent an intense area of investigation by researchers in academic and industrial settings. Recent findings link genetic and epigenetic events in mediating the acquisition of oncogenic activity by TGF-β, as do aberrant alterations within tumor microenvironments. These events coalesce to enable TGF-β to direct metastatic progression via the stimulation of epithelial-mesenchymal transition (EMT), which permits carcinoma cells to abandon polarized epithelial phenotypes in favor of apolar mesenchymal-like phenotypes. Attempts to deconstruct the EMT process induced by TGF-β have identified numerous signaling molecules, transcription factors, and microRNAs operant in mediating the initiation and resolution of this complex transdifferentiation event. In addition to its ability to enhance carcinoma cell invasion and metastasis, EMT also endows transitioned cells with stem-like properties, including the acquisition of self-renewal and tumor-initiating capabilities coupled to chemoresistance. Here, we review recent findings that delineate the pathophysiological mechanisms whereby EMT stimulated by TGF-β promotes metastatic progression and disease recurrence in human carcinomas.

MeSH Terms
Animals Disease Progression Epithelial-Mesenchymal Transition Gene Expression Regulation Humans MicroRNAs/genetics,metabolism Neoplasm Metastasis/pathology Neoplasms/pathology,physiopathology Neoplastic Stem Cells/physiology Signal Transduction/physiology Transforming Growth Factor beta/genetics,metabolism
Chemicals
MicroRNAs Transforming Growth Factor beta
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Wendt Michael K
Case Comprehensive Cancer Center, Division of General Medical Sciences-Oncology, Case Western Reserve University, Wolstein Research Building, 2103 Cornell Road, Cleveland, OH 44106, USA.
Tian Maozhen
Schiemann William P
References (193)
193 references, click to expand
  1. Nodal signaling and the evolution of deuterostome gastrulation.
    Dev Dyn. 2005 Oct;234(2):269-78 PMID: 16127715
  2. Matrix crosslinking forces tumor progression by enhancing integrin signaling.
    Cell. 2009 Nov 25;139(5):891-906 PMID: 19931152
  3. Beta3 integrin and Src facilitate transforming growth factor-beta mediated induction of epithelial-mesenchymal transition in mammary epithelial cells.
    Breast Cancer Res. 2006;8(4):R42 PMID: 16859511
  4. TGF-beta signaling: a tale of two responses.
    J Cell Biochem. 2007 Oct 15;102(3):593-608 PMID: 17729308
  5. Establishment and characterization of multi-drug resistant, prostate carcinoma-initiating stem-like cells from human prostate cancer cell lines 22RV1.
    Mol Cell Biochem. 2010 Jul;340(1-2):265-73 PMID: 20224986
  6. Insulin-like growth factor-I-dependent up-regulation of ZEB1 drives epithelial-to-mesenchymal transition in human prostate cancer cells.
    Cancer Res. 2008 Apr 1;68(7):2479-88 PMID: 18381457
  7. E-cadherin loss promotes the initiation of squamous cell carcinoma invasion through modulation of integrin-mediated adhesion.
    J Cell Sci. 2006 Jan 15;119(Pt 2):283-91 PMID: 16390868
  8. Epithelial-mesenchymal transition-derived cells exhibit multilineage differentiation potential similar to mesenchymal stem cells.
    Stem Cells. 2010 Aug;28(8):1435-45 PMID: 20572012
  9. Defective repression of c-myc in breast cancer cells: A loss at the core of the transforming growth factor beta growth arrest program.
    Proc Natl Acad Sci U S A. 2001 Jan 30;98(3):992-9 PMID: 11158583
  10. Noncanonical TGF-β signaling during mammary tumorigenesis.
    J Mammary Gland Biol Neoplasia. 2011 Jun;16(2):127-46 PMID: 21448580
  11. Involvement of EGF receptor and c-Src in the survival signals induced by TGF-beta1 in hepatocytes.
    Oncogene. 2005 Jun 30;24(28):4580-7 PMID: 15856020
  12. The epithelial-mesenchymal transition generates cells with properties of stem cells.
    Cell. 2008 May 16;133(4):704-15 PMID: 18485877
  13. Vimentin induces changes in cell shape, motility, and adhesion during the epithelial to mesenchymal transition.
    FASEB J. 2010 Jun;24(6):1838-51 PMID: 20097873
  14. Mesenchyme Forkhead 1 (FOXC2) plays a key role in metastasis and is associated with aggressive basal-like breast cancers.
    Proc Natl Acad Sci U S A. 2007 Jun 12;104(24):10069-74 PMID: 17537911
  15. Loss of TGF-beta type II receptor in fibroblasts promotes mammary carcinoma growth and invasion through upregulation of TGF-alpha-, MSP- and HGF-mediated signaling networks.
    Oncogene. 2005 Jul 28;24(32):5053-68 PMID: 15856015
  16. Expansion of CD133(+) colon cancer cultures retaining stem cell properties to enable cancer stem cell target discovery.
    Br J Cancer. 2010 Apr 13;102(8):1265-75 PMID: 20332776
  17. Inhibition of DNA synthesis in rat hepatocytes by platelet-derived type beta transforming growth factor.
    Cancer Res. 1986 May;46(5):2330-4 PMID: 3008986
  18. Development of the neural crest: achieving specificity in regulatory pathways.
    Curr Opin Cell Biol. 2006 Dec;18(6):698-703 PMID: 17030122
  19. Src phosphorylates Tyr284 in TGF-beta type II receptor and regulates TGF-beta stimulation of p38 MAPK during breast cancer cell proliferation and invasion.
    Cancer Res. 2007 Apr 15;67(8):3752-8 PMID: 17440088
  20. Arsenic-specific stem cell selection during malignant transformation.
    J Natl Cancer Inst. 2010 May 5;102(9):638-49 PMID: 20339138
  21. Targeting the insulin-like growth factor receptor-1R pathway for cancer therapy.
    Clin Cancer Res. 2010 May 1;16(9):2512-7 PMID: 20388853
  22. New regulatory mechanisms of TGF-beta receptor function.
    Trends Cell Biol. 2009 Aug;19(8):385-94 PMID: 19648010
  23. The logic of TGFbeta signaling.
    FEBS Lett. 2006 May 22;580(12):2811-20 PMID: 16678165
  24. Regulation of the polarity protein Par6 by TGFbeta receptors controls epithelial cell plasticity.
    Science. 2005 Mar 11;307(5715):1603-9 PMID: 15761148
  25. Specificity and versatility in tgf-beta signaling through Smads.
    Annu Rev Cell Dev Biol. 2005;21:659-93 PMID: 16212511
  26. Progressive tumor formation in mice with conditional deletion of TGF-beta signaling in head and neck epithelia is associated with activation of the PI3K/Akt pathway.
    Cancer Res. 2009 Jul 15;69(14):5918-26 PMID: 19584284
  27. Mechanisms of disease: epithelial-mesenchymal transition--does cellular plasticity fuel neoplastic progression?
    Nat Clin Pract Oncol. 2008 May;5(5):280-90 PMID: 18349857
  28. Cells of origin in cancer.
    Nature. 2011 Jan 20;469(7330):314-22 PMID: 21248838
  29. Epithelial-mesenchymal transition in development and cancer.
    Future Oncol. 2009 Oct;5(8):1129-43 PMID: 19852726
  30. Snail2 is an essential mediator of Twist1-induced epithelial mesenchymal transition and metastasis.
    Cancer Res. 2011 Jan 1;71(1):245-54 PMID: 21199805
  31. Transforming growth factor beta1 acts as an inducer of matrix metalloproteinase expression and activity in human bone-metastasizing cancer cells.
    Clin Exp Metastasis. 1999 Feb;17(1):27-34 PMID: 10390144
  32. Tgfbr1 haploinsufficiency is a potent modifier of colorectal cancer development.
    Cancer Res. 2009 Jan 15;69(2):678-86 PMID: 19147584
  33. Genes that mediate breast cancer metastasis to lung.
    Nature. 2005 Jul 28;436(7050):518-24 PMID: 16049480
  34. Cell adhesion and signalling by cadherins and Ig-CAMs in cancer.
    Nat Rev Cancer. 2004 Feb;4(2):118-32 PMID: 14964308
  35. Mechanisms of the epithelial-mesenchymal transition by TGF-beta.
    Future Oncol. 2009 Oct;5(8):1145-68 PMID: 19852727
  36. The two-handed E box binding zinc finger protein SIP1 downregulates E-cadherin and induces invasion.
    Mol Cell. 2001 Jun;7(6):1267-78 PMID: 11430829
  37. The basics of epithelial-mesenchymal transition.
    J Clin Invest. 2009 Jun;119(6):1420-8 PMID: 19487818
  38. Anti-transforming growth factor (TGF)-beta antibodies inhibit breast cancer cell tumorigenicity and increase mouse spleen natural killer cell activity. Implications for a possible role of tumor cell/host TGF-beta interactions in human breast cancer progression.
    J Clin Invest. 1993 Dec;92(6):2569-76 PMID: 7504687
  39. Identification of uPAR-positive chemoresistant cells in small cell lung cancer.
    PLoS One. 2007 Feb 28;2(2):e243 PMID: 17327908
  40. A gene regulatory network orchestrates neural crest formation.
    Nat Rev Mol Cell Biol. 2008 Jul;9(7):557-68 PMID: 18523435
  41. Abrogation of TGF beta signaling in mammary carcinomas recruits Gr-1+CD11b+ myeloid cells that promote metastasis.
    Cancer Cell. 2008 Jan;13(1):23-35 PMID: 18167337
  42. Bypassing cellular EGF receptor dependence through epithelial-to-mesenchymal-like transitions.
    Clin Exp Metastasis. 2008;25(6):685-93 PMID: 18236164
  43. Loss of E-cadherin promotes metastasis via multiple downstream transcriptional pathways.
    Cancer Res. 2008 May 15;68(10):3645-54 PMID: 18483246
  44. Clinicopathological significance of stromal myofibroblasts in invasive ductal carcinoma of the breast.
    Tumour Biol. 2004 Sep-Dec;25(5-6):290-5 PMID: 15627894
  45. Transforming growth factor-beta1 mediates epithelial to mesenchymal transdifferentiation through a RhoA-dependent mechanism.
    Mol Biol Cell. 2001 Jan;12(1):27-36 PMID: 11160820
  46. CD117 and Stro-1 identify osteosarcoma tumor-initiating cells associated with metastasis and drug resistance.
    Cancer Res. 2010 Jun 1;70(11):4602-12 PMID: 20460510
  47. The pathophysiology of epithelial-mesenchymal transition induced by transforming growth factor-beta in normal and malignant mammary epithelial cells.
    J Mammary Gland Biol Neoplasia. 2010 Jun;15(2):169-90 PMID: 20467795
  48. A side order of stem cells: the SP phenotype.
    Stem Cells. 2006 Jan;24(1):3-12 PMID: 16449630
  49. Overexpression of the c-Myc oncoprotein blocks the growth-inhibitory response but is required for the mitogenic effects of transforming growth factor beta 1.
    Proc Natl Acad Sci U S A. 1995 Apr 11;92(8):3239-43 PMID: 7724545
  50. Antibodies targeting cancer stem cells: a new paradigm in immunotherapy?
    MAbs. 2009 Jan-Feb;1(1):12-25 PMID: 20046569
  51. Requirement of type III TGF-beta receptor for endocardial cell transformation in the heart.
    Science. 1999 Mar 26;283(5410):2080-2 PMID: 10092230
  52. Kinase switching in mesenchymal-like non-small cell lung cancer lines contributes to EGFR inhibitor resistance through pathway redundancy.
    Clin Exp Metastasis. 2008;25(8):843-54 PMID: 18696232
  53. Drug resistant MCF-7 cells exhibit epithelial-mesenchymal transition gene expression pattern.
    Biomed Pharmacother. 2011 Feb;65(1):40-5 PMID: 21177063
  54. Prospective identification of tumorigenic breast cancer cells.
    Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3983-8 PMID: 12629218
  55. The small GTP-binding protein rho regulates the assembly of focal adhesions and actin stress fibers in response to growth factors.
    Cell. 1992 Aug 7;70(3):389-99 PMID: 1643657
  56. ZEB1 expression in type I vs type II endometrial cancers: a marker of aggressive disease.
    Mod Pathol. 2008 Jul;21(7):912-23 PMID: 18487993
  57. CD133 expression predicts for non-response to chemotherapy in colorectal cancer.
    Mod Pathol. 2010 Mar;23(3):450-7 PMID: 20081809
  58. A role for the TGFbeta-Par6 polarity pathway in breast cancer progression.
    Proc Natl Acad Sci U S A. 2009 Aug 18;106(33):14028-33 PMID: 19667198
  59. Epithelial to mesenchymal transition contributes to drug resistance in pancreatic cancer.
    Cancer Res. 2009 Jul 15;69(14):5820-8 PMID: 19584296
  60. The integrin-coupled signaling adaptor p130Cas suppresses Smad3 function in transforming growth factor-beta signaling.
    Mol Biol Cell. 2008 May;19(5):2135-46 PMID: 18321991
  61. Epidermal growth factor receptor and mutant p53 expand an esophageal cellular subpopulation capable of epithelial-to-mesenchymal transition through ZEB transcription factors.
    Cancer Res. 2010 May 15;70(10):4174-84 PMID: 20424117
  62. Identification and expansion of human colon-cancer-initiating cells.
    Nature. 2007 Jan 4;445(7123):111-5 PMID: 17122771
  63. Cellular and molecular mechanisms of fibrosis.
    J Pathol. 2008 Jan;214(2):199-210 PMID: 18161745
  64. Exogenous expression of N-cadherin in breast cancer cells induces cell migration, invasion, and metastasis.
    J Cell Biol. 2000 Feb 21;148(4):779-90 PMID: 10684258
  65. Chemoresistance to paclitaxel induces epithelial-mesenchymal transition and enhances metastatic potential for epithelial ovarian carcinoma cells.
    Int J Oncol. 2007 Aug;31(2):277-83 PMID: 17611683
  66. Characterization of a stem-like population in hepatocellular carcinoma MHCC97 cells.
    Oncol Rep. 2010 Mar;23(3):827-31 PMID: 20127026
  67. Phenotypic reversion or death of cancer cells by altering signaling pathways in three-dimensional contexts.
    J Natl Cancer Inst. 2002 Oct 2;94(19):1494-503 PMID: 12359858
  68. Sustained induction of epithelial to mesenchymal transition activates DNA methylation of genes silenced in basal-like breast cancers.
    Proc Natl Acad Sci U S A. 2008 Sep 30;105(39):14867-72 PMID: 18806226
  69. Mechanisms of TGF-beta signaling from cell membrane to the nucleus.
    Cell. 2003 Jun 13;113(6):685-700 PMID: 12809600
  70. Increased secretion of type beta transforming growth factor accompanies viral transformation of cells.
    Mol Cell Biol. 1985 Jan;5(1):242-7 PMID: 3856735
  71. Coordinated regulation of pathways for enhanced cell motility and chemotaxis is conserved in rat and mouse mammary tumors.
    Cancer Res. 2007 Apr 15;67(8):3505-11 PMID: 17440055
  72. p130Cas is required for mammary tumor growth and transforming growth factor-beta-mediated metastasis through regulation of Smad2/3 activity.
    J Biol Chem. 2009 Dec 4;284(49):34145-56 PMID: 19822523
  73. Constitutively active type I insulin-like growth factor receptor causes transformation and xenograft growth of immortalized mammary epithelial cells and is accompanied by an epithelial-to-mesenchymal transition mediated by NF-kappaB and snail.
    Mol Cell Biol. 2007 Apr;27(8):3165-75 PMID: 17296734
  74. A primary requirement for nodal in the formation and maintenance of the primitive streak in the mouse.
    Development. 1994 Jul;120(7):1919-28 PMID: 7924997
  75. Epithelial to mesenchymal transition is a determinant of sensitivity of non-small-cell lung carcinoma cell lines and xenografts to epidermal growth factor receptor inhibition.
    Cancer Res. 2005 Oct 15;65(20):9455-62 PMID: 16230409
  76. Functional role of transforming growth factor-beta type III receptor during palatal fusion.
    Dev Dyn. 2007 Mar;236(3):791-801 PMID: 17295310
  77. SIP1 protein protects cells from DNA damage-induced apoptosis and has independent prognostic value in bladder cancer.
    Proc Natl Acad Sci U S A. 2009 Sep 1;106(35):14884-9 PMID: 19706487
  78. Molecular definition of breast tumor heterogeneity.
    Cancer Cell. 2007 Mar;11(3):259-73 PMID: 17349583
  79. Breast carcinoma cells re-express E-cadherin during mesenchymal to epithelial reverting transition.
    Mol Cancer. 2010 Jul 07;9:179 PMID: 20609236
  80. Transforming growth factor beta induces clustering of HER2 and integrins by activating Src-focal adhesion kinase and receptor association to the cytoskeleton.
    Cancer Res. 2009 Jan 15;69(2):475-82 PMID: 19147560
  81. TGF-beta induced transdifferentiation of mammary epithelial cells to mesenchymal cells: involvement of type I receptors.
    J Cell Biol. 1994 Dec;127(6 Pt 2):2021-36 PMID: 7806579
  82. Non-Smad TGF-beta signals.
    J Cell Sci. 2005 Aug 15;118(Pt 16):3573-84 PMID: 16105881
  83. Positive expression of E-cadherin suppresses cell adhesion to fibronectin via reduction of alpha5beta1 integrin in human breast carcinoma cells.
    J Cancer Res Clin Oncol. 2006 Dec;132(12):795-803 PMID: 16821070
  84. Synergistic induction of cyclooxygenase-2 by transforming growth factor-beta1 and epidermal growth factor inhibits apoptosis in epithelial cells.
    Neoplasia. 1999 Dec;1(6):508-17 PMID: 10935498
  85. CD44-positive cells are responsible for gemcitabine resistance in pancreatic cancer cells.
    Int J Cancer. 2009 Nov 15;125(10):2323-31 PMID: 19598259
  86. ALDH1 is a marker of normal and malignant human mammary stem cells and a predictor of poor clinical outcome.
    Cell Stem Cell. 2007 Nov;1(5):555-67 PMID: 18371393
  87. p53 regulates epithelial-mesenchymal transition and stem cell properties through modulating miRNAs.
    Nat Cell Biol. 2011 Mar;13(3):317-23 PMID: 21336307
  88. Acquisition of epithelial-mesenchymal transition phenotype of gemcitabine-resistant pancreatic cancer cells is linked with activation of the notch signaling pathway.
    Cancer Res. 2009 Mar 15;69(6):2400-7 PMID: 19276344
  89. Activated Abl kinase inhibits oncogenic transforming growth factor-beta signaling and tumorigenesis in mammary tumors.
    FASEB J. 2009 Dec;23(12):4231-43 PMID: 19690215
  90. Regulation of Par6 by extracellular signals.
    Curr Opin Cell Biol. 2006 Apr;18(2):206-12 PMID: 16490351
  91. The transcription factor snail mediates epithelial to mesenchymal transitions by repression of estrogen receptor-alpha.
    Mol Endocrinol. 2007 Dec;21(12):2907-18 PMID: 17761946
  92. Epithelial to mesenchymal transition predicts gefitinib resistance in cell lines of head and neck squamous cell carcinoma and non-small cell lung carcinoma.
    Mol Cancer Ther. 2007 Jun;6(6):1683-91 PMID: 17541031
  93. The therapeutic promise of the cancer stem cell concept.
    J Clin Invest. 2010 Jan;120(1):41-50 PMID: 20051635
  94. Identification of cancer stem cell-like cells from human epithelial ovarian carcinoma cell line.
    Cell Mol Life Sci. 2010 Nov;67(22):3915-25 PMID: 20549538
  95. Epithelial-mesenchymal transition (EMT) in tumor-initiating cells and its clinical implications in breast cancer.
    J Mammary Gland Biol Neoplasia. 2010 Jun;15(2):253-60 PMID: 20354771
  96. Lysyl oxidase contributes to mechanotransduction-mediated regulation of transforming growth factor-β signaling in breast cancer cells.
    Neoplasia. 2011 May;13(5):406-18 PMID: 21532881
  97. Genetic analysis of the mammalian transforming growth factor-beta superfamily.
    Endocr Rev. 2002 Dec;23(6):787-823 PMID: 12466190
  98. A reciprocal repression between ZEB1 and members of the miR-200 family promotes EMT and invasion in cancer cells.
    EMBO Rep. 2008 Jun;9(6):582-9 PMID: 18483486
  99. Epithelial-mesenchymal transition: at the crossroads of development and tumor metastasis.
    Dev Cell. 2008 Jun;14(6):818-29 PMID: 18539112
  100. The TGF-beta paradox in human cancer: an update.
    Future Oncol. 2009 Mar;5(2):259-71 PMID: 19284383
  101. MicroRNA-155 is regulated by the transforming growth factor beta/Smad pathway and contributes to epithelial cell plasticity by targeting RhoA.
    Mol Cell Biol. 2008 Nov;28(22):6773-84 PMID: 18794355
  102. Reversion of the malignant phenotype of human breast cells in three-dimensional culture and in vivo by integrin blocking antibodies.
    J Cell Biol. 1997 Apr 7;137(1):231-45 PMID: 9105051
  103. TGF-beta signaling in fibroblasts modulates the oncogenic potential of adjacent epithelia.
    Science. 2004 Feb 6;303(5659):848-51 PMID: 14764882
  104. Myofibroblast contraction activates latent TGF-beta1 from the extracellular matrix.
    J Cell Biol. 2007 Dec 17;179(6):1311-23 PMID: 18086923
  105. TGFbeta in Cancer.
    Cell. 2008 Jul 25;134(2):215-30 PMID: 18662538
  106. Reversible inhibition of mammary gland growth by transforming growth factor-beta.
    Science. 1987 Jul 17;237(4812):291-3 PMID: 3474783
  107. Altered epidermal cell growth control in vivo by inducible expression of transforming growth factor beta 1 in the skin of transgenic mice.
    Cell Growth Differ. 1996 May;7(5):679-87 PMID: 8732677
  108. twist and snail as positive and negative regulators during Drosophila mesoderm development.
    Genes Dev. 1991 Sep;5(9):1568-76 PMID: 1884999
  109. Diverse cellular and molecular mechanisms contribute to epithelial plasticity and metastasis.
    Nat Rev Mol Cell Biol. 2003 Aug;4(8):657-65 PMID: 12923528
  110. Autocrine loop for IGF-I receptor signaling in SLUG-mediated epithelial-mesenchymal transition.
    Int J Oncol. 2009 Feb;34(2):329-38 PMID: 19148466
  111. The transcription factor snail controls epithelial-mesenchymal transitions by repressing E-cadherin expression.
    Nat Cell Biol. 2000 Feb;2(2):76-83 PMID: 10655586
  112. Tight junctions/adherens junctions: basic structure and function.
    J Invest Dermatol. 2007 Nov;127(11):2525-32 PMID: 17934504
  113. Systemic delivery of an oncolytic adenovirus expressing soluble transforming growth factor-β receptor II-Fc fusion protein can inhibit breast cancer bone metastasis in a mouse model.
    Hum Gene Ther. 2010 Nov;21(11):1623-9 PMID: 20712434
  114. Multiple drug resistance mechanisms in cancer.
    Mol Biotechnol. 2010 Nov;46(3):308-16 PMID: 20717753
  115. Mammographic density and the risk and detection of breast cancer.
    N Engl J Med. 2007 Jan 18;356(3):227-36 PMID: 17229950
  116. miR-9, a MYC/MYCN-activated microRNA, regulates E-cadherin and cancer metastasis.
    Nat Cell Biol. 2010 Mar;12(3):247-56 PMID: 20173740
  117. Cancer stem cells contribute to cisplatin resistance in Brca1/p53-mediated mouse mammary tumors.
    Cancer Res. 2008 May 1;68(9):3243-50 PMID: 18451150
  118. Roles for the type III TGF-beta receptor in human cancer.
    Cell Signal. 2010 Aug;22(8):1163-74 PMID: 20153821
  119. TGFbeta2 knockout mice have multiple developmental defects that are non-overlapping with other TGFbeta knockout phenotypes.
    Development. 1997 Jul;124(13):2659-70 PMID: 9217007
  120. Generation of breast cancer stem cells through epithelial-mesenchymal transition.
    PLoS One. 2008 Aug 06;3(8):e2888 PMID: 18682804
  121. Epithelial-mesenchymal transitions in tumour progression.
    Nat Rev Cancer. 2002 Jun;2(6):442-54 PMID: 12189386
  122. Integrin beta 1 signaling is necessary for transforming growth factor-beta activation of p38MAPK and epithelial plasticity.
    J Biol Chem. 2001 Dec 14;276(50):46707-13 PMID: 11590169
  123. Transforming growth factor-beta and microRNA:mRNA regulatory networks in epithelial plasticity.
    Cells Tissues Organs. 2007;185(1-3):157-61 PMID: 17587821
  124. Y-box binding protein-1 induces the expression of CD44 and CD49f leading to enhanced self-renewal, mammosphere growth, and drug resistance.
    Cancer Res. 2010 Apr 1;70(7):2840-51 PMID: 20332234
  125. Transforming growth factor-beta stimulates the expression of fibronectin and collagen and their incorporation into the extracellular matrix.
    J Biol Chem. 1986 Mar 25;261(9):4337-45 PMID: 3456347
  126. Genetic programs of epithelial cell plasticity directed by transforming growth factor-beta.
    Proc Natl Acad Sci U S A. 2001 Jun 5;98(12):6686-91 PMID: 11390996
  127. Biologic characteristics of the side population of human small cell lung cancer cell line H446.
    Chin J Cancer. 2010 Mar;29(3):254-60 PMID: 20193106
  128. TGF-beta-induced transcriptional activation of MMP-2 is mediated by activating transcription factor (ATF)2 in human breast epithelial cells.
    Cancer Lett. 2007 Jul 8;252(1):147-56 PMID: 17258390
  129. Distinct populations of cancer stem cells determine tumor growth and metastatic activity in human pancreatic cancer.
    Cell Stem Cell. 2007 Sep 13;1(3):313-23 PMID: 18371365
  130. Induction of cell cycle entry eliminates human leukemia stem cells in a mouse model of AML.
    Nat Biotechnol. 2010 Mar;28(3):275-80 PMID: 20160717
  131. Transforming growth factor-β-induced epithelial-mesenchymal transition facilitates epidermal growth factor-dependent breast cancer progression.
    Oncogene. 2010 Dec 9;29(49):6485-98 PMID: 20802523
  132. PGE2 receptor EP2 mediates the antagonistic effect of COX-2 on TGF-beta signaling during mammary tumorigenesis.
    FASEB J. 2010 Apr;24(4):1105-16 PMID: 19897661
  133. Epithelial-mesenchymal transitions in development and disease.
    Cell. 2009 Nov 25;139(5):871-90 PMID: 19945376
  134. EMT, cancer stem cells and drug resistance: an emerging axis of evil in the war on cancer.
    Oncogene. 2010 Aug 26;29(34):4741-51 PMID: 20531305
  135. Epithelial versus mesenchymal phenotype determines in vitro sensitivity and predicts clinical activity of erlotinib in lung cancer patients.
    Clin Cancer Res. 2005 Dec 15;11(24 Pt 1):8686-98 PMID: 16361555
  136. beta4 integrin-dependent formation of polarized three-dimensional architecture confers resistance to apoptosis in normal and malignant mammary epithelium.
    Cancer Cell. 2002 Sep;2(3):205-16 PMID: 12242153
  137. Therapeutic targeting of the focal adhesion complex prevents oncogenic TGF-beta signaling and metastasis.
    Breast Cancer Res. 2009;11(5):R68 PMID: 19740433
  138. p130Cas as a new regulator of mammary epithelial cell proliferation, survival, and HER2-neu oncogene-dependent breast tumorigenesis.
    Cancer Res. 2006 May 1;66(9):4672-80 PMID: 16651418
  139. Abnormal lung development and cleft palate in mice lacking TGF-beta 3 indicates defects of epithelial-mesenchymal interaction.
    Nat Genet. 1995 Dec;11(4):415-21 PMID: 7493022
  140. The emerging role of EpCAM in cancer and stem cell signaling.
    Cancer Res. 2009 Jul 15;69(14):5627-9 PMID: 19584271
  141. Targeted TGF-beta chemotherapies: friend or foe in treating human malignancies?
    Expert Rev Anticancer Ther. 2007 May;7(5):609-11 PMID: 17492924
  142. Doxorubicin in combination with a small TGFbeta inhibitor: a potential novel therapy for metastatic breast cancer in mouse models.
    PLoS One. 2010 Apr 28;5(4):e10365 PMID: 20442777
  143. Grb2 binding to Tyr284 in TbetaR-II is essential for mammary tumor growth and metastasis stimulated by TGF-beta.
    Carcinogenesis. 2008 Feb;29(2):244-51 PMID: 18174260
  144. An embryonic stem cell-like gene expression signature in poorly differentiated aggressive human tumors.
    Nat Genet. 2008 May;40(5):499-507 PMID: 18443585
  145. Fibulin-5 initiates epithelial-mesenchymal transition (EMT) and enhances EMT induced by TGF-beta in mammary epithelial cells via a MMP-dependent mechanism.
    Carcinogenesis. 2008 Dec;29(12):2243-51 PMID: 18713838
  146. Chemotherapy-resistant human AML stem cells home to and engraft within the bone-marrow endosteal region.
    Nat Biotechnol. 2007 Nov;25(11):1315-21 PMID: 17952057
  147. Central role for Rho in TGF-beta1-induced alpha-smooth muscle actin expression during epithelial-mesenchymal transition.
    Am J Physiol Renal Physiol. 2003 May;284(5):F911-24 PMID: 12505862
  148. Applying the principles of stem-cell biology to cancer.
    Nat Rev Cancer. 2003 Dec;3(12):895-902 PMID: 14737120
  149. TGFbeta1 inhibits the formation of benign skin tumors, but enhances progression to invasive spindle carcinomas in transgenic mice.
    Cell. 1996 Aug 23;86(4):531-42 PMID: 8752208
  150. Twist, a master regulator of morphogenesis, plays an essential role in tumor metastasis.
    Cell. 2004 Jun 25;117(7):927-39 PMID: 15210113
  151. The miR-200 family and miR-205 regulate epithelial to mesenchymal transition by targeting ZEB1 and SIP1.
    Nat Cell Biol. 2008 May;10(5):593-601 PMID: 18376396
  152. Common and unique mechanisms regulate fibrosis in various fibroproliferative diseases.
    J Clin Invest. 2007 Mar;117(3):524-9 PMID: 17332879
  153. Transforming growth factor-beta employs HMGA2 to elicit epithelial-mesenchymal transition.
    J Cell Biol. 2006 Jul 17;174(2):175-83 PMID: 16831886
  154. A multigenic program mediating breast cancer metastasis to bone.
    Cancer Cell. 2003 Jun;3(6):537-49 PMID: 12842083
  155. Tensional homeostasis and the malignant phenotype.
    Cancer Cell. 2005 Sep;8(3):241-54 PMID: 16169468
  156. A human colon cancer cell capable of initiating tumour growth in immunodeficient mice.
    Nature. 2007 Jan 4;445(7123):106-10 PMID: 17122772
  157. SMAD proteins control DROSHA-mediated microRNA maturation.
    Nature. 2008 Jul 3;454(7200):56-61 PMID: 18548003
  158. Analysis of gene expression and chemoresistance of CD133+ cancer stem cells in glioblastoma.
    Mol Cancer. 2006 Dec 02;5:67 PMID: 17140455
  159. Interactions between Wnt and Vg1 signalling pathways initiate primitive streak formation in the chick embryo.
    Development. 2001 Aug;128(15):2915-27 PMID: 11532915
  160. Homeoprotein Six1 increases TGF-beta type I receptor and converts TGF-beta signaling from suppressive to supportive for tumor growth.
    Cancer Res. 2010 Dec 15;70(24):10371-80 PMID: 21056993
  161. Core epithelial-to-mesenchymal transition interactome gene-expression signature is associated with claudin-low and metaplastic breast cancer subtypes.
    Proc Natl Acad Sci U S A. 2010 Aug 31;107(35):15449-54 PMID: 20713713
  162. The miR-200 family inhibits epithelial-mesenchymal transition and cancer cell migration by direct targeting of E-cadherin transcriptional repressors ZEB1 and ZEB2.
    J Biol Chem. 2008 May 30;283(22):14910-4 PMID: 18411277
  163. Reduced Erlotinib sensitivity of epidermal growth factor receptor-mutant non-small cell lung cancer following cisplatin exposure: a cell culture model of second-line erlotinib treatment.
    Clin Cancer Res. 2008 Nov 1;14(21):6867-76 PMID: 18980981
  164. Transforming growth factor production by chemically transformed cells.
    Cancer Res. 1981 Jul;41(7):2842-8 PMID: 6265069
  165. Changing neighbours, changing behaviour: cell adhesion molecule-mediated signalling during tumour progression.
    EMBO J. 2003 May 15;22(10):2318-23 PMID: 12743026
  166. The SLUG zinc-finger protein represses E-cadherin in breast cancer.
    Cancer Res. 2002 Mar 15;62(6):1613-8 PMID: 11912130
  167. Smad4 signalling in T cells is required for suppression of gastrointestinal cancer.
    Nature. 2006 Jun 22;441(7096):1015-9 PMID: 16791201
  168. A paracrine loop between tumor cells and macrophages is required for tumor cell migration in mammary tumors.
    Cancer Res. 2004 Oct 1;64(19):7022-9 PMID: 15466195
  169. Distinct roles of Akt1 and Akt2 in regulating cell migration and epithelial-mesenchymal transition.
    J Cell Biol. 2005 Dec 19;171(6):1023-34 PMID: 16365168
  170. The tight junction: a multifunctional complex.
    Am J Physiol Cell Physiol. 2004 Jun;286(6):C1213-28 PMID: 15151915
  171. New class of transforming growth factors potentiated by epidermal growth factor: isolation from non-neoplastic tissues.
    Proc Natl Acad Sci U S A. 1981 Sep;78(9):5339-43 PMID: 6975480
  172. Mechanisms of cancer drug resistance.
    Annu Rev Med. 2002;53:615-27 PMID: 11818492
  173. TGF-beta signal transduction.
    Annu Rev Biochem. 1998;67:753-91 PMID: 9759503
  174. Epidermal growth factor receptor cooperates with signal transducer and activator of transcription 3 to induce epithelial-mesenchymal transition in cancer cells via up-regulation of TWIST gene expression.
    Cancer Res. 2007 Oct 1;67(19):9066-76 PMID: 17909010
  175. Cox-2 inactivates Smad signaling and enhances EMT stimulated by TGF-beta through a PGE2-dependent mechanisms.
    Carcinogenesis. 2008 Nov;29(11):2227-35 PMID: 18725385
  176. ZEB1 enhances transendothelial migration and represses the epithelial phenotype of prostate cancer cells.
    Mol Biol Cell. 2009 Apr;20(8):2207-17 PMID: 19225155
  177. Role of transforming growth factor beta in human disease.
    N Engl J Med. 2000 May 4;342(18):1350-8 PMID: 10793168
  178. Epithelial-mesenchymal transition in cancer: parallels between normal development and tumor progression.
    J Mammary Gland Biol Neoplasia. 2010 Jun;15(2):117-34 PMID: 20490631
  179. Matrix rigidity regulates cancer cell growth and cellular phenotype.
    PLoS One. 2010 Sep 23;5(9):e12905 PMID: 20886123
  180. E-cadherin is a ligand for integrin alpha2beta1.
    Matrix Biol. 2002 Oct;21(6):525-32 PMID: 12392763
  181. Smad signaling is required to maintain epigenetic silencing during breast cancer progression.
    Cancer Res. 2010 Feb 1;70(3):968-78 PMID: 20086175
  182. Colorectal cancer stem cells are enriched in xenogeneic tumors following chemotherapy.
    PLoS One. 2008 Jun 18;3(6):e2428 PMID: 18560594
  183. Invasion of human breast cancer cells in vivo requires both paracrine and autocrine loops involving the colony-stimulating factor-1 receptor.
    Cancer Res. 2009 Dec 15;69(24):9498-506 PMID: 19934330
  184. Nodal is a novel TGF-beta-like gene expressed in the mouse node during gastrulation.
    Nature. 1993 Feb 11;361(6412):543-7 PMID: 8429908
  185. Molecular and functional analysis of the stem cell compartment of chronic myelogenous leukemia reveals the presence of a CD34- cell population with intrinsic resistance to imatinib.
    Blood. 2009 Dec 10;114(25):5191-200 PMID: 19855080
  186. Colon cancer stem cells dictate tumor growth and resist cell death by production of interleukin-4.
    Cell Stem Cell. 2007 Oct 11;1(4):389-402 PMID: 18371377
  187. Junctional adhesion molecules (JAMs): more molecules with dual functions?
    J Cell Sci. 2004 Jan 1;117(Pt 1):19-29 PMID: 14657270
  188. miR-200 enhances mouse breast cancer cell colonization to form distant metastases.
    PLoS One. 2009 Sep 29;4(9):e7181 PMID: 19787069
  189. Conditional overexpression of active transforming growth factor beta1 in vivo accelerates metastases of transgenic mammary tumors.
    Cancer Res. 2004 Dec 15;64(24):9002-11 PMID: 15604265
  190. Regulation of cell-cell adhesion by rac and rho small G proteins in MDCK cells.
    J Cell Biol. 1997 Nov 17;139(4):1047-59 PMID: 9362522
  191. Epithelia suspended in collagen gels can lose polarity and express characteristics of migrating mesenchymal cells.
    J Cell Biol. 1982 Oct;95(1):333-9 PMID: 7142291
  192. miR-21 and miR-31 converge on TIAM1 to regulate migration and invasion of colon carcinoma cells.
    J Biol Chem. 2010 Nov 12;285(46):35293-302 PMID: 20826792
  193. Transforming growth factor-β and the hallmarks of cancer.
    Cell Signal. 2011 Jun;23(6):951-62 PMID: 20940046
Article Info
Journal
Cell and tissue research
Abbr.
Cell Tissue Res
ISSN
1432-0878
Published
2012-01-00
Epub
2011-00-21
Pages
85-101
Language
English
Region
Germany
NLM ID
0417625
PMCID
PMC3723118
Subset
IM
Grants
NCI NIH HHS · R01 CA129359 · United States
NCI NIH HHS · CA129359 · United States
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