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Crystal structure of the zeta isoform of the 14-3-3 protein.
Nature. 1995 Jul 13;376(6536):191-4
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Structure of a 14-3-3 protein and implications for coordination of multiple signalling pathways.
Nature. 1995 Jul 13;376(6536):188-91
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Cell. 1996 Mar 22;84(6):889-97
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Raf-1 kinase and exoenzyme S interact with 14-3-3zeta through a common site involving lysine 49.
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CRM1 is an export receptor for leucine-rich nuclear export signals.
Cell. 1997 Sep 19;90(6):1051-60
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CRM1 is responsible for intracellular transport mediated by the nuclear export signal.
Nature. 1997 Nov 20;390(6657):308-11
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The structural basis for 14-3-3:phosphopeptide binding specificity.
Cell. 1997 Dec 26;91(7):961-71
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14-3-3 proteins act as negative regulators of the mitotic inducer Cdc25 in Xenopus egg extracts.
Mol Biol Cell. 1998 Feb;9(2):345-54
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Mutations in the hydrophobic surface of an amphipathic groove of 14-3-3zeta disrupt its interaction with Raf-1 kinase.
J Biol Chem. 1998 Jun 26;273(26):16297-304
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14-3-3zeta binds a phosphorylated Raf peptide and an unphosphorylated peptide via its conserved amphipathic groove.
J Biol Chem. 1998 Jun 26;273(26):16305-10
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14-3-3sigma is a p53-regulated inhibitor of G2/M progression.
Mol Cell. 1997 Dec;1(1):3-11
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A dimeric 14-3-3 protein is an essential cofactor for Raf kinase activity.
Nature. 1998 Jul 2;394(6688):88-92
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14-3-3 proteins are required for maintenance of Raf-1 phosphorylation and kinase activity.
Mol Cell Biol. 1998 Sep;18(9):5229-38
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Association of the TLX-2 homeodomain and 14-3-3eta signaling proteins.
J Biol Chem. 1998 Sep 25;273(39):25356-63
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Nuclear localization of Cdc25 is regulated by DNA damage and a 14-3-3 protein.
Nature. 1999 Jan 14;397(6715):172-5
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Akt promotes cell survival by phosphorylating and inhibiting a Forkhead transcription factor.
Cell. 1999 Mar 19;96(6):857-68
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EMBO J. 1999 Apr 15;18(8):2174-83
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Binding of 14-3-3 proteins and nuclear export control the intracellular localization of the mitotic inducer Cdc25.
Genes Dev. 1999 May 1;13(9):1067-72
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Cytoplasmic localization of human cdc25C during interphase requires an intact 14-3-3 binding site.
Mol Cell Biol. 1999 Jun;19(6):4465-79
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Structural analysis of 14-3-3 phosphopeptide complexes identifies a dual role for the nuclear export signal of 14-3-3 in ligand binding.
Mol Cell. 1999 Aug;4(2):153-66
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DNA damage and replication checkpoints in fission yeast require nuclear exclusion of the Cdc25 phosphatase via 14-3-3 binding.
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The TOR signalling pathway controls nuclear localization of nutrient-regulated transcription factors.
Nature. 1999 Dec 9;402(6762):689-92
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Oncogene. 2000 Apr 27;19(18):2179-85
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Annu Rev Pharmacol Toxicol. 2000;40:617-47
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Involvement of 14-3-3 proteins in nuclear localization of telomerase.
EMBO J. 2000 Jun 1;19(11):2652-61
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Regulation of histone deacetylase 4 and 5 and transcriptional activity by 14-3-3-dependent cellular localization.
Proc Natl Acad Sci U S A. 2000 Jul 5;97(14):7835-40
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Regulation of histone deacetylase 4 by binding of 14-3-3 proteins.
Mol Cell Biol. 2000 Sep;20(18):6904-12
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EMBO J. 2000 Dec 15;19(24):6778-91
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Phosphatidylinositol 3-kinase signaling inhibits DAF-16 DNA binding and function via 14-3-3-dependent and 14-3-3-independent pathways.
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Inhibition of nuclear import by protein kinase B (Akt) regulates the subcellular distribution and activity of the forkhead transcription factor AFX.
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Oncogene. 2001 Oct 1;20(44):6331-8
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