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PMID: 10330189 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Nuclear localization and formation of beta-catenin-lymphoid enhancer factor 1 complexes are not sufficient for activation of gene expression.

Molecular and cellular biology ·Vol. 19 ·No. 6 ·1999-06-00 ·Pages 4503-15

Prieve MG, Waterman ML

Abstract

In response to activation of the Wnt signaling pathway, beta-catenin accumulates in the nucleus, where it cooperates with LEF/TCF (for lymphoid enhancer factor and T-cell factor) transcription factors to activate gene expression. The mechanisms by which beta-catenin undergoes this shift in location and participates in activation of gene transcription are unknown. We demonstrate here that beta-catenin can be imported into the nucleus independently of LEF/TCF binding, and it may also be exported from nuclei. We have introduced a small deletion within beta-catenin (Delta19) that disrupts binding to LEF-1, E-cadherin, and APC but not axin. This Delta19 beta-catenin mutant localizes to the nucleus because it may not be efficiently sequestered in the cytoplasm. The nuclear localization of Delta19 definitively demonstrates that the mechanisms by which beta-catenin localizes in the nucleus are completely independent of LEF/TCF factors. beta-Catenin and LEF-1 complexes can activate reporter gene expression in a transformed T-lymphocyte cell line (Jurkat) but not in normal T lymphocytes, even though both factors are nuclear. Thus, localization of both factors to the nucleus is not sufficient for activation of gene expression. Excess beta-catenin can squelch reporter gene activation by LEF-1-beta-catenin complexes but not activation by the transcription factor VP16. Taken together, these data suggest that a third component is necessary for gene activation and that this third component may vary with cell type.

MeSH Terms
Animals COS Cells Cadherins/metabolism Cell Line Cell Nucleus/metabolism Cycloheximide/pharmacology Cytoplasm/metabolism Cytoskeletal Proteins/metabolism,physiology DNA-Binding Proteins/metabolism,physiology Dactinomycin/pharmacology Gene Expression Regulation Humans Ionomycin/pharmacology Jurkat Cells Lymphocytes/metabolism Lymphoid Enhancer-Binding Factor 1 Microscopy, Fluorescence Models, Genetic Mutagenesis Plasmids Precipitin Tests Protein Synthesis Inhibitors/pharmacology Recombinant Fusion Proteins Tetradecanoylphorbol Acetate/pharmacology Trans-Activators Transcription Factors/metabolism,physiology Transcriptional Activation beta Catenin
Chemicals
CTNNB1 protein, human Cadherins Cytoskeletal Proteins DNA-Binding Proteins LEF1 protein, human Lymphoid Enhancer-Binding Factor 1 Protein Synthesis Inhibitors Recombinant Fusion Proteins Trans-Activators Transcription Factors beta Catenin Dactinomycin Ionomycin Cycloheximide Tetradecanoylphorbol Acetate
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Prieve M G
Department of Microbiology and Molecular Genetics, College of Medicine, University of California, Irvine, Irvine, California 92697-4025, USA.
Waterman M L
References (72)
72 references, click to expand
  1. Two members of the Tcf family implicated in Wnt/beta-catenin signaling during embryogenesis in the mouse.
    Mol Cell Biol. 1998 Mar;18(3):1248-56 PMID: 9488439
  2. Axin, a negative regulator of the Wnt signaling pathway, forms a complex with GSK-3beta and beta-catenin and promotes GSK-3beta-dependent phosphorylation of beta-catenin.
    EMBO J. 1998 Mar 2;17(5):1371-84 PMID: 9482734
  3. Nuclear localization signal-independent and importin/karyopherin-independent nuclear import of beta-catenin.
    Curr Biol. 1998 Feb 12;8(4):181-90 PMID: 9501980
  4. Functional interaction of an axin homolog, conductin, with beta-catenin, APC, and GSK3beta.
    Science. 1998 Apr 24;280(5363):596-9 PMID: 9554852
  5. Wnt signaling: why is everything so negative?
    Curr Opin Cell Biol. 1998 Apr;10(2):182-7 PMID: 9561842
  6. Axin, a negative regulator of the wnt signaling pathway, directly interacts with adenomatous polyposis coli and regulates the stabilization of beta-catenin.
    J Biol Chem. 1998 May 1;273(18):10823-6 PMID: 9556553
  7. Axil, a member of the Axin family, interacts with both glycogen synthase kinase 3beta and beta-catenin and inhibits axis formation of Xenopus embryos.
    Mol Cell Biol. 1998 May;18(5):2867-75 PMID: 9566905
  8. Differential nuclear translocation and transactivation potential of beta-catenin and plakoglobin.
    J Cell Biol. 1998 Jun 15;141(6):1433-48 PMID: 9628899
  9. Drosophila Tcf and Groucho interact to repress Wingless signalling activity.
    Nature. 1998 Oct 8;395(6702):604-8 PMID: 9783586
  10. The Xenopus Wnt effector XTcf-3 interacts with Groucho-related transcriptional repressors.
    Nature. 1998 Oct 8;395(6702):608-12 PMID: 9783587
  11. Pontin52, an interaction partner of beta-catenin, binds to the TATA box binding protein.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):14787-92 PMID: 9843967
  12. Deletion of an amino-terminal sequence beta-catenin in vivo and promotes hyperphosporylation of the adenomatous polyposis coli tumor suppressor protein.
    Mol Cell Biol. 1996 Aug;16(8):4088-94 PMID: 8754807
  13. Functional interaction of beta-catenin with the transcription factor LEF-1.
    Nature. 1996 Aug 15;382(6592):638-42 PMID: 8757136
  14. XTcf-3 transcription factor mediates beta-catenin-induced axis formation in Xenopus embryos.
    Cell. 1996 Aug 9;86(3):391-9 PMID: 8756721
  15. From naive to memory T cells.
    Immunol Rev. 1996 Apr;150:143-67 PMID: 8782706
  16. A pituitary POU domain protein, Pit-1, activates both growth hormone and prolactin promoters transcriptionally.
    Genes Dev. 1989 Jul;3(7):946-58 PMID: 2550324
  17. Nuclear protein import in permeabilized mammalian cells requires soluble cytoplasmic factors.
    J Cell Biol. 1990 Sep;111(3):807-16 PMID: 2391365
  18. Identification and cloning of TCF-1, a T lymphocyte-specific transcription factor containing a sequence-specific HMG box.
    EMBO J. 1991 Jan;10(1):123-32 PMID: 1989880
  19. A thymus-specific member of the HMG protein family regulates the human T cell receptor C alpha enhancer.
    Genes Dev. 1991 Apr;5(4):656-69 PMID: 2010090
  20. LEF-1, a gene encoding a lymphoid-specific protein with an HMG domain, regulates T-cell receptor alpha enhancer function [corrected].
    Genes Dev. 1991 May;5(5):880-94 PMID: 1827423
  21. Binding of general transcription factor TFIIB to an acidic activating region.
    Nature. 1991 Oct 10;353(6344):569-71 PMID: 1922364
  22. GBP, an inhibitor of GSK-3, is implicated in Xenopus development and oncogenesis.
    Cell. 1998 Jun 12;93(6):1031-41 PMID: 9635432
  23. The presenilin 1 protein is a component of a high molecular weight intracellular complex that contains beta-catenin.
    J Biol Chem. 1998 Jun 26;273(26):16470-5 PMID: 9632714
  24. Modulation of transcriptional regulation by LEF-1 in response to Wnt-1 signaling and association with beta-catenin.
    Mol Cell Biol. 1998 Aug;18(8):4807-18 PMID: 9671490
  25. Differential importin-alpha recognition and nuclear transport by nuclear localization signals within the high-mobility-group DNA binding domains of lymphoid enhancer factor 1 and T-cell factor 1.
    Mol Cell Biol. 1998 Aug;18(8):4819-32 PMID: 9671491
  26. Crystallographic analysis of the recognition of a nuclear localization signal by the nuclear import factor karyopherin alpha.
    Cell. 1998 Jul 24;94(2):193-204 PMID: 9695948
  27. Trunk-specific modulation of wingless signalling in Drosophila by teashirt binding to armadillo.
    Curr Biol. 1998 Jul 30-Aug 13;8(16):893-902 PMID: 9707400
  28. Transcriptional repression by AML1 and LEF-1 is mediated by the TLE/Groucho corepressors.
    Proc Natl Acad Sci U S A. 1998 Sep 29;95(20):11590-5 PMID: 9751710
  29. Drosophila CBP represses the transcription factor TCF to antagonize Wingless signalling.
    Nature. 1998 Oct 1;395(6701):521-5 PMID: 9774110
  30. Shuttling of pre-mRNA binding proteins between nucleus and cytoplasm.
    Nature. 1992 Feb 20;355(6362):730-2 PMID: 1371331
  31. The HMG domain of lymphoid enhancer factor 1 bends DNA and facilitates assembly of functional nucleoprotein structures.
    Cell. 1992 Apr 3;69(1):185-95 PMID: 1555239
  32. Drosophila TAFII40 interacts with both a VP16 activation domain and the basal transcription factor TFIIB.
    Cell. 1993 Nov 5;75(3):519-30 PMID: 8221891
  33. LEF-1 contains an activation domain that stimulates transcription only in a specific context of factor-binding sites.
    EMBO J. 1993 Dec;12(12):4667-76 PMID: 8223476
  34. The hLEF/TCF-1 alpha HMG protein contains a context-dependent transcriptional activation domain that induces the TCR alpha enhancer in T cells.
    Genes Dev. 1993 Dec;7(12A):2418-30 PMID: 8253387
  35. The Drosophila segment polarity gene dishevelled encodes a novel protein required for response to the wingless signal.
    Genes Dev. 1994 Jan;8(1):118-30 PMID: 8288125
  36. A repeating amino acid motif shared by proteins with diverse cellular roles.
    Cell. 1994 Mar 11;76(5):789-91 PMID: 7907279
  37. dishevelled is required during wingless signaling to establish both cell polarity and cell identity.
    Development. 1994 Feb;120(2):347-60 PMID: 8149913
  38. Regulation and functions of the glycogen synthase kinase-3 subfamily.
    Semin Cancer Biol. 1994 Aug;5(4):269-75 PMID: 7803763
  39. E-cadherin and APC compete for the interaction with beta-catenin and the cytoskeleton.
    J Cell Biol. 1994 Dec;127(6 Pt 2):2061-9 PMID: 7806582
  40. Embryonic axis induction by the armadillo repeat domain of beta-catenin: evidence for intracellular signaling.
    J Cell Biol. 1995 Mar;128(5):959-68 PMID: 7876319
  41. The APC protein and E-cadherin form similar but independent complexes with alpha-catenin, beta-catenin, and plakoglobin.
    J Biol Chem. 1995 Mar 10;270(10):5549-55 PMID: 7890674
  42. Assembly and function of a TCR alpha enhancer complex is dependent on LEF-1-induced DNA bending and multiple protein-protein interactions.
    Genes Dev. 1995 Apr 15;9(8):995-1008 PMID: 7774816
  43. Two different subunits of importin cooperate to recognize nuclear localization signals and bind them to the nuclear envelope.
    Curr Biol. 1995 Apr 1;5(4):383-92 PMID: 7627554
  44. Structural basis for DNA bending by the architectural transcription factor LEF-1.
    Nature. 1995 Aug 31;376(6543):791-5 PMID: 7651541
  45. Binding to cadherins antagonizes the signaling activity of beta-catenin during axis formation in Xenopus.
    J Cell Biol. 1996 Mar;132(6):1105-14 PMID: 8601588
  46. Nucleocytoplasmic transport.
    Science. 1996 Mar 15;271(5255):1513-8 PMID: 8599106
  47. Three functional classes of transcriptional activation domain.
    Mol Cell Biol. 1996 May;16(5):2044-55 PMID: 8628270
  48. Wnt-1 regulates free pools of catenins and stabilizes APC-catenin complexes.
    Mol Cell Biol. 1996 May;16(5):2128-34 PMID: 8628279
  49. The nuclear localization signal of lymphoid enhancer factor-1 is recognized by two differentially expressed Srp1-nuclear localization sequence receptor proteins.
    J Biol Chem. 1996 Mar 29;271(13):7654-8 PMID: 8631802
  50. Binding of GSK3beta to the APC-beta-catenin complex and regulation of complex assembly.
    Science. 1996 May 17;272(5264):1023-6 PMID: 8638126
  51. T-cell activation leads to rapid stimulation of translation initiation factor eIF2B and inactivation of glycogen synthase kinase-3.
    J Biol Chem. 1996 May 10;271(19):11410-3 PMID: 8626696
  52. Transcriptional regulation of the interleukin-2 gene in normal human peripheral blood T cells. Convergence of costimulatory signals and differences from transformed T cells.
    J Biol Chem. 1996 Mar 8;271(10):5369-77 PMID: 8621390
  53. An in vivo structure-function study of armadillo, the beta-catenin homologue, reveals both separate and overlapping regions of the protein required for cell adhesion and for wingless signaling.
    J Cell Biol. 1996 Sep;134(5):1283-300 PMID: 8794868
  54. Lessons from hereditary colorectal cancer.
    Cell. 1996 Oct 18;87(2):159-70 PMID: 8861899
  55. Wingless inactivates glycogen synthase kinase-3 via an intracellular signalling pathway which involves a protein kinase C.
    EMBO J. 1996 Sep 2;15(17):4526-36 PMID: 8887544
  56. Nuclear localization of beta-catenin by interaction with transcription factor LEF-1.
    Mech Dev. 1996 Sep;59(1):3-10 PMID: 8892228
  57. Signal transduction through beta-catenin and specification of cell fate during embryogenesis.
    Genes Dev. 1996 Oct 15;10(20):2527-39 PMID: 8895655
  58. Constitutive transcriptional activation by a beta-catenin-Tcf complex in APC-/- colon carcinoma.
    Science. 1997 Mar 21;275(5307):1784-7 PMID: 9065401
  59. Activation of beta-catenin-Tcf signaling in colon cancer by mutations in beta-catenin or APC.
    Science. 1997 Mar 21;275(5307):1787-90 PMID: 9065402
  60. Nuclear export of NF-ATc enhanced by glycogen synthase kinase-3.
    Science. 1997 Mar 28;275(5308):1930-4 PMID: 9072970
  61. Armadillo coactivates transcription driven by the product of the Drosophila segment polarity gene dTCF.
    Cell. 1997 Mar 21;88(6):789-99 PMID: 9118222
  62. Nuclear localization of NF-ATc by a calcineurin-dependent, cyclosporin-sensitive intramolecular interaction.
    Genes Dev. 1997 Apr 1;11(7):824-34 PMID: 9106655
  63. Nucleocytoplasmic transport: signals, mechanisms and regulation.
    Nature. 1997 Apr 24;386(6627):779-87 PMID: 9126736
  64. The adenomatous polyposis coli (APC) tumor suppressor.
    Biochim Biophys Acta. 1997 Jun 7;1332(3):F127-47 PMID: 9196022
  65. The mouse Fused locus encodes Axin, an inhibitor of the Wnt signaling pathway that regulates embryonic axis formation.
    Cell. 1997 Jul 11;90(1):181-92 PMID: 9230313
  66. beta-catenin is a target for the ubiquitin-proteasome pathway.
    EMBO J. 1997 Jul 1;16(13):3797-804 PMID: 9233789
  67. Three-dimensional structure of the armadillo repeat region of beta-catenin.
    Cell. 1997 Sep 5;90(5):871-82 PMID: 9298899
  68. Evolutionary specialization of the nuclear targeting apparatus.
    Proc Natl Acad Sci U S A. 1997 Dec 9;94(25):13738-42 PMID: 9391096
  69. Functional analysis of DNA bending and unwinding by the high mobility group domain of LEF-1.
    Proc Natl Acad Sci U S A. 1997 Nov 25;94(24):12845-50 PMID: 9371763
  70. Wnt signaling: a common theme in animal development.
    Genes Dev. 1997 Dec 15;11(24):3286-305 PMID: 9407023
  71. Induction of a beta-catenin-LEF-1 complex by wnt-1 and transforming mutants of beta-catenin.
    Oncogene. 1997 Dec 4;15(23):2833-9 PMID: 9419974
  72. Signal transduction by the Wnt family of ligands.
    Biochem J. 1998 Jan 15;329 ( Pt 2):209-23 PMID: 9425102
Article Info
Journal
Molecular and cellular biology
Abbr.
Mol Cell Biol
ISSN
0270-7306
Published
1999-06-00
Pages
4503-15
Language
English
Region
United States
NLM ID
8109087
PMCID
PMC104408
Subset
IM
Grants
NCI NIH HHS · CA 62069 · United States
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