Literature DB >> 16287851

Sumoylation of p45/NF-E2: nuclear positioning and transcriptional activation of the mammalian beta-like globin gene locus.

Yu-Chiau Shyu1, Tung-Liang Lee, Chun-Yuan Ting, Shau-Ching Wen, Lie-Jiau Hsieh, Yueh-Chun Li, Jau-Lang Hwang, Chyi-Chyang Lin, C-K James Shen.   

Abstract

NF-E2 is a transcription activator for the regulation of a number of erythroid- and megakaryocytic lineage-specific genes. Here we present evidence that the large subunit of mammalian NF-E2, p45, is sumoylated in vivo in human erythroid K562 cells and in mouse fetal liver. By in vitro sumoylation reaction and DNA transfection experiments, we show that the sumoylation occurs at lysine 368 (K368) of human p45/NF-E2. Furthermore, p45 sumoylation enhances the transactivation capability of NF-E2, and this is accompanied by an increase of the NF-E2 DNA binding affinity. More interestingly, we have found that in K562 cells, the beta-globin gene loci in the euchromatin regions are predominantly colocalized with the nuclear bodies promyelocytic leukemia protein (PML) oncogenic domains that are enriched with the PML, SUMO-1, RNA polymerase II, and sumoylatable p45/NF-E2. Chromatin immunoprecipitation assays further showed that the intact sumoylation site of p45/NF-E2 is required for its binding to the DNase I-hypersensitive sites of the beta-globin locus control region. Finally, we demonstrated by stable transfection assay that only the wild-type p45, but not its mutant form p45 (K368R), could efficiently rescue beta-globin gene expression in the p45-null, erythroid cell line CB3. These data together point to a model of mammalian beta-like globin gene activation by sumoylated p45/NF-E2 in erythroid cells.

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Year:  2005        PMID: 16287851      PMCID: PMC1291221          DOI: 10.1128/MCB.25.23.10365-10378.2005

Source DB:  PubMed          Journal:  Mol Cell Biol        ISSN: 0270-7306            Impact factor:   4.272


  65 in total

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Authors:  Q H Gong; J C McDowell; A Dean
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6.  A novel nuclear structure containing the survival of motor neurons protein.

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Authors:  J A Armstrong; B M Emerson
Journal:  Mol Cell Biol       Date:  1996-10       Impact factor: 4.272

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Authors:  K Igarashi; K Kataoka; K Itoh; N Hayashi; M Nishizawa; M Yamamoto
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  15 in total

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5.  JNK-mediated turnover and stabilization of the transcription factor p45/NF-E2 during differentiation of murine erythroleukemia cells.

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6.  Sumoylation of EKLF promotes transcriptional repression and is involved in inhibition of megakaryopoiesis.

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7.  Extracellular signal-regulated kinase mitogen-activated protein kinase signaling initiates a dynamic interplay between sumoylation and ubiquitination to regulate the activity of the transcriptional activator PEA3.

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8.  Phosphorylation-dependent SUMOylation of the transcription factor NF-E2.

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9.  Chromatin modification by SUMO-1 stimulates the promoters of translation machinery genes.

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10.  SUMOylation regulates the transcriptional repression activity of FOG-2 and its association with GATA-4.

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