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PMID: 22505459 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Epithelial-mesenchymal transition can suppress major attributes of human epithelial tumor-initiating cells.

The Journal of clinical investigation ·Vol. 122 ·No. 5 ·2012-05-00 ·Pages 1849-68

Celià-Terrassa T, Meca-Cortés O, Mateo F, Martínez de Paz A, Rubio N, Arnal-Estapé A, Ell BJ, Bermudo R, Díaz A, Guerra-Rebollo M, Lozano JJ, Estarás C, Ulloa C, Álvarez-Simón D, Milà J, Vilella R, Paciucci R, Martínez-Balbás M, de Herreros AG, Gomis RR, Kang Y, Blanco J, Fernández PL, Thomson TM

Abstract

Malignant progression in cancer requires populations of tumor-initiating cells (TICs) endowed with unlimited self renewal, survival under stress, and establishment of distant metastases. Additionally, the acquisition of invasive properties driven by epithelial-mesenchymal transition (EMT) is critical for the evolution of neoplastic cells into fully metastatic populations. Here, we characterize 2 human cellular models derived from prostate and bladder cancer cell lines to better understand the relationship between TIC and EMT programs in local invasiveness and distant metastasis. The model tumor subpopulations that expressed a strong epithelial gene program were enriched in highly metastatic TICs, while a second subpopulation with stable mesenchymal traits was impoverished in TICs. Constitutive overexpression of the transcription factor Snai1 in the epithelial/TIC-enriched populations engaged a mesenchymal gene program and suppressed their self renewal and metastatic phenotypes. Conversely, knockdown of EMT factors in the mesenchymal-like prostate cancer cell subpopulation caused a gain in epithelial features and properties of TICs. Both tumor cell subpopulations cooperated so that the nonmetastatic mesenchymal-like prostate cancer subpopulation enhanced the in vitro invasiveness of the metastatic epithelial subpopulation and, in vivo, promoted the escape of the latter from primary implantation sites and accelerated their metastatic colonization. Our models provide new insights into how dynamic interactions among epithelial, self-renewal, and mesenchymal gene programs determine the plasticity of epithelial TICs.

MeSH Terms
Animals Antigens, Differentiation/genetics,metabolism Cadherins/genetics,metabolism Cell Line, Tumor Cell Movement Cell Shape Coculture Techniques Epithelial Cells/pathology,physiology Epithelial-Mesenchymal Transition/genetics Gene Expression Profiling Gene Regulatory Networks Homeodomain Proteins/genetics,metabolism Humans Male Mice Mice, Inbred NOD Mice, SCID Neoplasm Invasiveness/pathology Neoplasm Metastasis/pathology Neoplasm Staging Neoplasm Transplantation Prostatic Neoplasms Repressor Proteins/genetics,metabolism Snail Family Transcription Factors Spheroids, Cellular/metabolism,pathology Transcription Factors/genetics,metabolism Twist-Related Protein 1/genetics,metabolism Urinary Bladder Neoplasms Zinc Finger E-box-Binding Homeobox 1
Chemicals
Antigens, Differentiation Cadherins Homeodomain Proteins Repressor Proteins SNAI1 protein, human Snai1 protein, mouse Snail Family Transcription Factors TWIST2 protein, human Transcription Factors Twist-Related Protein 1 ZEB1 protein, human Zinc Finger E-box-Binding Homeobox 1
Authors & Affiliations
24 authors, click to expand affiliations / ORCID
Celià-Terrassa Toni
Department of Cell Biology, Barcelona Institute of Molecular Biology, Consejo Superior de Investigaciones Científicas (CSIC), Barcelona, Spain.
Meca-Cortés Oscar
Mateo Francesca
Martínez de Paz Alexia
Rubio Nuria
Arnal-Estapé Anna
Ell Brian J
Bermudo Raquel
Díaz Alba
Guerra-Rebollo Marta
Lozano Juan José
Estarás Conchi
Ulloa Catalina
Álvarez-Simón Daniel
Milà Jordi
Vilella Ramón
Paciucci Rosanna
Martínez-Balbás Marian
de Herreros Antonio García
Gomis Roger R
Kang Yibin
Blanco Jerónimo
Fernández Pedro L
Thomson Timothy M
References (62)
62 references, click to expand
  1. The epithelial-mesenchymal transition generates cells with properties of stem cells.
    Cell. 2008 May 16;133(4):704-15 PMID: 18485877
  2. Snail, Zeb and bHLH factors in tumour progression: an alliance against the epithelial phenotype?
    Nat Rev Cancer. 2007 Jun;7(6):415-28 PMID: 17508028
  3. Molecular definition of breast tumor heterogeneity.
    Cancer Cell. 2007 Mar;11(3):259-73 PMID: 17349583
  4. Epithelial-mesenchymal transition and cell cooperativity in metastasis.
    Cancer Res. 2009 Sep 15;69(18):7135-9 PMID: 19738043
  5. 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
  6. Molecular requirements for epithelial-mesenchymal transition during tumor progression.
    Curr Opin Cell Biol. 2005 Oct;17(5):548-58 PMID: 16098727
  7. Cancer stem cells from colorectal cancer-derived cell lines.
    Proc Natl Acad Sci U S A. 2010 Feb 23;107(8):3722-7 PMID: 20133591
  8. CD44+ CD24(-) prostate cells are early cancer progenitor/stem cells that provide a model for patients with poor prognosis.
    Br J Cancer. 2008 Feb 26;98(4):756-65 PMID: 18268494
  9. Interaction between Ras(V12) and scribbled clones induces tumour growth and invasion.
    Nature. 2010 Jan 28;463(7280):545-8 PMID: 20072127
  10. Identification of pancreatic cancer stem cells.
    Cancer Res. 2007 Feb 1;67(3):1030-7 PMID: 17283135
  11. Direct targeting of Sec23a by miR-200s influences cancer cell secretome and promotes metastatic colonization.
    Nat Med. 2011 Aug 07;17(9):1101-8 PMID: 21822286
  12. A mesenchymal-to-epithelial transition initiates and is required for the nuclear reprogramming of mouse fibroblasts.
    Cell Stem Cell. 2010 Jul 2;7(1):51-63 PMID: 20621050
  13. Epithelial-mesenchymal transitions: the importance of changing cell state in development and disease.
    J Clin Invest. 2009 Jun;119(6):1438-49 PMID: 19487820
  14. Cancer as an evolutionary and ecological process.
    Nat Rev Cancer. 2006 Dec;6(12):924-35 PMID: 17109012
  15. The basics of epithelial-mesenchymal transition.
    J Clin Invest. 2009 Jun;119(6):1420-8 PMID: 19487818
  16. Expression of E-cadherin in human ductal breast cancer carcinoma in situ, invasive carcinomas, their lymph node metastases, their distant metastases, carcinomas with recurrence and in recurrence.
    Anticancer Res. 2007 Jul-Aug;27(4A):1969-74 PMID: 17649807
  17. Snail blocks the cell cycle and confers resistance to cell death.
    Genes Dev. 2004 May 15;18(10):1131-43 PMID: 15155580
  18. Functional genomics reveals a BMP-driven mesenchymal-to-epithelial transition in the initiation of somatic cell reprogramming.
    Cell Stem Cell. 2010 Jul 2;7(1):64-77 PMID: 20621051
  19. Integrative genomic profiling of human prostate cancer.
    Cancer Cell. 2010 Jul 13;18(1):11-22 PMID: 20579941
  20. A gene regulatory network orchestrates neural crest formation.
    Nat Rev Mol Cell Biol. 2008 Jul;9(7):557-68 PMID: 18523435
  21. Epithelial-mesenchymal transition (EMT) is not sufficient for spontaneous murine breast cancer metastasis.
    Dev Dyn. 2008 Oct;237(10):2755-68 PMID: 18773493
  22. Combined noninvasive imaging and luminometric quantification of luciferase-labeled human prostate tumors and metastases.
    Lab Invest. 2002 Nov;82(11):1563-71 PMID: 12429816
  23. Control of cell behavior during vertebrate development by Slug, a zinc finger gene.
    Science. 1994 May 6;264(5160):835-9 PMID: 7513443
  24. Prospective identification of tumorigenic breast cancer cells.
    Proc Natl Acad Sci U S A. 2003 Apr 1;100(7):3983-8 PMID: 12629218
  25. Identification of a cancer stem cell in human brain tumors.
    Cancer Res. 2003 Sep 15;63(18):5821-8 PMID: 14522905
  26. In vitro reprogramming of fibroblasts into a pluripotent ES-cell-like state.
    Nature. 2007 Jul 19;448(7151):318-24 PMID: 17554336
  27. Is cell competition relevant to cancer?
    Nat Rev Cancer. 2008 Feb;8(2):141-7 PMID: 18185517
  28. Cancer stem cells: mirage or reality?
    Nat Med. 2009 Sep;15(9):1010-2 PMID: 19734877
  29. Slug inhibits proliferation of human prostate cancer cells via downregulation of cyclin D1 expression.
    Prostate. 2010 Dec 1;70(16):1768-77 PMID: 20564361
  30. Evolution of cooperation among tumor cells.
    Proc Natl Acad Sci U S A. 2006 Sep 5;103(36):13474-9 PMID: 16938860
  31. Upregulated MT1-MMP/TIMP-2 axis in the TSU-Pr1-B1/B2 model of metastatic progression in transitional cell carcinoma of the bladder.
    Clin Exp Metastasis. 2005;22(2):115-25 PMID: 16086232
  32. Expression pattern of adhesion molecules (E-cadherin, alpha-, beta-, gamma-catenin and claudin-7), their influence on survival in primary breast carcinoma, and their corresponding axillary lymph node metastasis.
    APMIS. 2007 Jan;115(1):52-65 PMID: 17223851
  33. Cancer cells in epithelial-to-mesenchymal transition and tumor-propagating-cancer stem cells: distinct, overlapping or same populations.
    Oncogene. 2011 Nov 17;30(46):4609-21 PMID: 21643013
  34. Senescence-messaging secretome: SMS-ing cellular stress.
    Nat Rev Cancer. 2009 Feb;9(2):81-94 PMID: 19132009
  35. When fibroblasts MET iPSCs.
    Cell Stem Cell. 2010 Jul 2;7(1):5-6 PMID: 20621040
  36. Senescence-associated secretory phenotypes reveal cell-nonautonomous functions of oncogenic RAS and the p53 tumor suppressor.
    PLoS Biol. 2008 Dec 2;6(12):2853-68 PMID: 19053174
  37. Epithelial-mesenchymal transition induced by growth suppressor p12CDK2-AP1 promotes tumor cell local invasion but suppresses distant colony growth.
    Cancer Res. 2008 Dec 15;68(24):10377-86 PMID: 19074907
  38. Establishment and characterization of a human prostatic carcinoma cell line (PC-3).
    Invest Urol. 1979 Jul;17(1):16-23 PMID: 447482
  39. Induction of pluripotent stem cells from fibroblast cultures.
    Nat Protoc. 2007;2(12):3081-9 PMID: 18079707
  40. Module map of stem cell genes guides creation of epithelial cancer stem cells.
    Cell Stem Cell. 2008 Apr 10;2(4):333-44 PMID: 18397753
  41. Snail1 transcriptional repressor binds to its own promoter and controls its expression.
    Nucleic Acids Res. 2006 Apr 14;34(7):2077-84 PMID: 16617148
  42. SNAI1 is required for tumor growth and lymph node metastasis of human breast carcinoma MDA-MB-231 cells.
    Cancer Res. 2007 Dec 15;67(24):11721-31 PMID: 18089802
  43. Cancer and the chemokine network.
    Nat Rev Cancer. 2004 Jul;4(7):540-50 PMID: 15229479
  44. Epithelial-mesenchymal transition: at the crossroads of development and tumor metastasis.
    Dev Cell. 2008 Jun;14(6):818-29 PMID: 18539112
  45. Mesenchymal stem cells within tumour stroma promote breast cancer metastasis.
    Nature. 2007 Oct 4;449(7162):557-63 PMID: 17914389
  46. Metastatic behavior of human tumor cell lines grown in the nude mouse.
    Cancer Res. 1984 Aug;44(8):3522-9 PMID: 6744277
  47. The bone marrow vascular niche: home of HSC differentiation and mobilization.
    Physiology (Bethesda). 2005 Oct;20:349-56 PMID: 16174874
  48. Enrichment for murine keratinocyte stem cells based on cell surface phenotype.
    Proc Natl Acad Sci U S A. 2000 Sep 26;97(20):10960-5 PMID: 11005869
  49. Mesenchymal-to-epithelial transition facilitates bladder cancer metastasis: role of fibroblast growth factor receptor-2.
    Cancer Res. 2006 Dec 1;66(23):11271-8 PMID: 17145872
  50. Epithelial to mesenchymal transition of a primary prostate cell line with switches of cell adhesion modules but without malignant transformation.
    PLoS One. 2008;3(10):e3368 PMID: 18852876
  51. E-cadherin, a new mixer in the Yamanaka cocktail.
    EMBO Rep. 2011 Jul 01;12(7):613-4 PMID: 21701504
  52. The epigenetic progenitor origin of human cancer.
    Nat Rev Genet. 2006 Jan;7(1):21-33 PMID: 16369569
  53. Epithelial-mesenchymal transitions in development and disease.
    Cell. 2009 Nov 25;139(5):871-90 PMID: 19945376
  54. A cell initiating human acute myeloid leukaemia after transplantation into SCID mice.
    Nature. 1994 Feb 17;367(6464):645-8 PMID: 7509044
  55. An embryonic stem cell-like gene expression signature in poorly differentiated aggressive human tumors.
    Nat Genet. 2008 May;40(5):499-507 PMID: 18443585
  56. Induction of EMT by twist proteins as a collateral effect of tumor-promoting inactivation of premature senescence.
    Cancer Cell. 2008 Jul 8;14(1):79-89 PMID: 18598946
  57. A Myc network accounts for similarities between embryonic stem and cancer cell transcription programs.
    Cell. 2010 Oct 15;143(2):313-24 PMID: 20946988
  58. Twist, a master regulator of morphogenesis, plays an essential role in tumor metastasis.
    Cell. 2004 Jun 25;117(7):927-39 PMID: 15210113
  59. Direct regulation of TWIST by HIF-1alpha promotes metastasis.
    Nat Cell Biol. 2008 Mar;10(3):295-305 PMID: 18297062
  60. A perspective on cancer cell metastasis.
    Science. 2011 Mar 25;331(6024):1559-64 PMID: 21436443
  61. miR-200 enhances mouse breast cancer cell colonization to form distant metastases.
    PLoS One. 2009 Sep 29;4(9):e7181 PMID: 19787069
  62. E-cadherin is crucial for embryonic stem cell pluripotency and can replace OCT4 during somatic cell reprogramming.
    EMBO Rep. 2011 Jul 01;12(7):720-6 PMID: 21617704
Article Info
Journal
The Journal of clinical investigation
Abbr.
J Clin Invest
ISSN
1558-8238
Published
2012-05-00
Epub
2012-00-16
Pages
1849-68
Language
English
Region
United States
NLM ID
7802877
PMCID
PMC3366719
Subset
IM
Corrections
CommentIn
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