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PMID: 16822840 Published · ppublish English Journal Article Research Support, N.I.H., Extramural

Microphthalmia-associated transcription factor interactions with 14-3-3 modulate differentiation of committed myeloid precursors.

Molecular biology of the cell ·Vol. 17 ·No. 9 ·2006-09-00 ·Pages 3897-906

Bronisz A, Sharma SM, Hu R, Godlewski J, Tzivion G, Mansky KC, Ostrowski MC

Abstract

The microphthalmia-associated transcription factor (MITF) is required for terminal osteoclast differentiation and is a target for signaling pathways engaged by colony stimulating factor (CSF)-1 and receptor-activator of nuclear factor-kappaB ligand (RANKL). Work presented here demonstrates that MITF can shuttle from cytoplasm to nucleus dependent upon RANKL/CSF-1 action. 14-3-3 was identified as a binding partner of MITF in osteoclast precursors, and overexpression of 14-3-3 in a transgenic model resulted in increased cytosolic localization of MITF and decreased expression of MITF target genes. MITF/14-3-3 interaction was phosphorylation dependent, and Ser173 residue, within the minimal interaction region of amino acid residues 141-191, was required. The Cdc25C-associated kinase (C-TAK)1 interacted with an overlapping region of MITF. C-TAK1 increased MITF/14-3-3 complex formation and thus promoted cytoplasmic localization of MITF. C-TAK1 interaction was disrupted by RANKL/CSF-1 treatment. The results indicate that 14-3-3 regulates MITF activity by promoting the cytosolic localization of MITF in the absence of signals required for osteoclast differentiation. This work identifies a mechanism that regulates MITF activity in monocytic precursors that are capable of undergoing different terminal differentiation programs, and it provides a mechanism that allows committed precursors to rapidly respond to signals in the bone microenvironment to promote specifically osteoclast differentiation.

MeSH Terms
14-3-3 Proteins/metabolism Animals COS Cells Cell Differentiation Cells, Cultured Chlorocebus aethiops Gene Expression Humans Mice Microphthalmia-Associated Transcription Factor/chemistry,metabolism Models, Biological Myeloid Progenitor Cells/cytology,metabolism Osteoclasts/cytology Phosphoserine/metabolism Protein Binding Protein Interaction Mapping Protein Serine-Threonine Kinases/metabolism Protein Transport
Chemicals
14-3-3 Proteins Microphthalmia-Associated Transcription Factor Phosphoserine Protein Serine-Threonine Kinases
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Bronisz Agnieszka
Department of Molecular and Cellular Biochemistry and the Comprehensive Cancer Center, The Ohio State University Medical Center, Columbus, OH 43210, USA.
Sharma Sudarshana M
Hu Rong
Godlewski Jakub
Tzivion Guri
Mansky Kim C
Ostrowski Michael C
References (37)
37 references, click to expand
  1. 14-3-3 proteins: structure, function, and regulation.
    Annu Rev Pharmacol Toxicol. 2000;40:617-47 PMID: 10836149
  2. Intrinsic disorder is a key characteristic in partners that bind 14-3-3 proteins.
    Proteins. 2006 Apr 1;63(1):35-42 PMID: 16444738
  3. 14-3-3 proteins: regulation of subcellular localization by molecular interference.
    Cell Signal. 2000 Dec;12(11-12):703-9 PMID: 11152955
  4. Phosphatidylinositol 3-kinase signaling inhibits DAF-16 DNA binding and function via 14-3-3-dependent and 14-3-3-independent pathways.
    J Biol Chem. 2001 Apr 20;276(16):13402-10 PMID: 11124266
  5. Genetic and physical interactions between Microphthalmia transcription factor and PU.1 are necessary for osteoclast gene expression and differentiation.
    J Biol Chem. 2001 Sep 28;276(39):36703-10 PMID: 11481336
  6. C-TAK1 regulates Ras signaling by phosphorylating the MAPK scaffold, KSR1.
    Mol Cell. 2001 Nov;8(5):983-93 PMID: 11741534
  7. 14-3-3 proteins: active cofactors in cellular regulation by serine/threonine phosphorylation.
    J Biol Chem. 2002 Feb 1;277(5):3061-4 PMID: 11709560
  8. Microphthalmia transcription factor is a target of the p38 MAPK pathway in response to receptor activator of NF-kappa B ligand signaling.
    J Biol Chem. 2002 Mar 29;277(13):11077-83 PMID: 11792706
  9. Exoenzyme S binds its cofactor 14-3-3 through a non-phosphorylated motif.
    Biochem Soc Trans. 2002 Aug;30(4):401-5 PMID: 12196103
  10. A novel heterodimerization domain, CRM1, and 14-3-3 control subcellular localization of the MondoA-Mlx heterocomplex.
    Mol Cell Biol. 2002 Dec;22(24):8514-26 PMID: 12446771
  11. Osteoclast differentiation and activation.
    Nature. 2003 May 15;423(6937):337-42 PMID: 12748652
  12. Functional analysis of C-TAK1 substrate binding and identification of PKP2 as a new C-TAK1 substrate.
    EMBO J. 2003 Sep 1;22(17):4431-42 PMID: 12941695
  13. Significance of 14-3-3 self-dimerization for phosphorylation-dependent target binding.
    Mol Biol Cell. 2003 Nov;14(11):4721-33 PMID: 14551260
  14. Isoform-specific differences in rapid nucleocytoplasmic shuttling cause distinct subcellular distributions of 14-3-3 sigma and 14-3-3 zeta.
    J Cell Sci. 2004 Mar 15;117(Pt 8):1411-20 PMID: 14996909
  15. Mitf and Tfe3: members of a b-HLH-ZIP transcription factor family essential for osteoclast development and function.
    Bone. 2004 Apr;34(4):689-96 PMID: 15050900
  16. F-actin-dependent insolubility of chromatin-modifying components.
    J Biol Chem. 2004 Jun 11;279(24):25017-23 PMID: 15082715
  17. The subcellular localization of the ChoRE-binding protein, encoded by the Williams-Beuren syndrome critical region gene 14, is regulated by 14-3-3.
    Hum Mol Genet. 2004 Jul 15;13(14):1505-14 PMID: 15163635
  18. Activated Ets2 is required for persistent inflammatory responses in the motheaten viable model.
    J Immunol. 2004 Jul 15;173(2):1374-9 PMID: 15240733
  19. Proteomic, functional, and domain-based analysis of in vivo 14-3-3 binding proteins involved in cytoskeletal regulation and cellular organization.
    Curr Biol. 2004 Aug 24;14(16):1436-50 PMID: 15324660
  20. A helix-loop-helix protein related to the immunoglobulin E box-binding proteins.
    Mol Cell Biol. 1990 Aug;10(8):4384-8 PMID: 2115126
  21. Mutations at the mouse microphthalmia locus are associated with defects in a gene encoding a novel basic-helix-loop-helix-zipper protein.
    Cell. 1993 Jul 30;74(2):395-404 PMID: 8343963
  22. Post-translationally modified 14-3-3 isoforms and inhibition of protein kinase C.
    Mol Cell Biochem. 1995 Aug-Sep;149-150:41-9 PMID: 8569748
  23. Ras-mediated phosphorylation of a conserved threonine residue enhances the transactivation activities of c-Ets1 and c-Ets2.
    Mol Cell Biol. 1996 Feb;16(2):538-47 PMID: 8552081
  24. The recessive phenotype displayed by a dominant negative microphthalmia-associated transcription factor mutant is a result of impaired nucleation potential.
    Mol Cell Biol. 1996 Mar;16(3):1203-11 PMID: 8622664
  25. Interaction of 14-3-3 with signaling proteins is mediated by the recognition of phosphoserine.
    Cell. 1996 Mar 22;84(6):889-97 PMID: 8601312
  26. Molecular aspects of osteoclast function.
    Inflamm Res. 1996 Jan;45(1):1-9 PMID: 8821771
  27. Serine phosphorylation-dependent association of the band 4.1-related protein-tyrosine phosphatase PTPH1 with 14-3-3beta protein.
    J Biol Chem. 1997 Oct 24;272(43):27281-7 PMID: 9341175
  28. MAP kinase links the transcription factor Microphthalmia to c-Kit signalling in melanocytes.
    Nature. 1998 Jan 15;391(6664):298-301 PMID: 9440696
  29. C-TAK1 protein kinase phosphorylates human Cdc25C on serine 216 and promotes 14-3-3 protein binding.
    Cell Growth Differ. 1998 Mar;9(3):197-208 PMID: 9543386
  30. Lineage-specific signaling in melanocytes. C-kit stimulation recruits p300/CBP to microphthalmia.
    J Biol Chem. 1998 Jul 17;273(29):17983-6 PMID: 9660747
  31. A dimeric 14-3-3 protein is an essential cofactor for Raf kinase activity.
    Nature. 1998 Jul 2;394(6688):88-92 PMID: 9665134
  32. A combination of osteoclast differentiation factor and macrophage-colony stimulating factor is sufficient for both human and mouse osteoclast formation in vitro.
    Endocrinology. 1998 Oct;139(10):4424-7 PMID: 9751528
  33. Akt promotes cell survival by phosphorylating and inhibiting a Forkhead transcription factor.
    Cell. 1999 Mar 19;96(6):857-68 PMID: 10102273
  34. The oncogenic serine/threonine kinase Pim-1 phosphorylates and inhibits the activity of Cdc25C-associated kinase 1 (C-TAK1): a novel role for Pim-1 at the G2/M cell cycle checkpoint.
    J Biol Chem. 2004 Nov 12;279(46):48319-28 PMID: 15319445
  35. Mitf cooperates with Rb1 and activates p21Cip1 expression to regulate cell cycle progression.
    Nature. 2005 Feb 17;433(7027):764-9 PMID: 15716956
  36. Protein kinase A phosphorylates and regulates dimerization of 14-3-3 epsilon.
    FEBS Lett. 2006 Jan 9;580(1):305-10 PMID: 16376338
  37. c-Jun NH(2)-terminal kinase inhibits targeting of the protein phosphatase calcineurin to NFATc1.
    Mol Cell Biol. 2000 Jul;20(14):5227-34 PMID: 10866678
Article Info
Journal
Molecular biology of the cell
Abbr.
Mol Biol Cell
ISSN
1059-1524
Published
2006-09-00
Epub
2006-00-05
Pages
3897-906
Language
English
Region
United States
NLM ID
9201390
PMCID
PMC1593166
Subset
IM
Grants
NIAMS NIH HHS · R01 AR044719 · United States
NIAMS NIH HHS · R01-AR-0447129 · United States
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