Iron deficiency upregulates Egr1 expression

被引:0
作者
Seung-Min Lee
Sun Bok Lee
Ron Prywes
Christopher D. Vulpe
机构
[1] Yonsei University,Department of Food and Nutrition, College of Human Ecology
[2] Columbia University,Department of Biological Sciences
[3] University of California,Department of Nutritional Science and Toxicology
来源
Genes & Nutrition | 2015年 / 10卷
关键词
Iron; Deficiency; Egr1; Desferrioxamine; ERK;
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摘要
Iron-deficient anemia is a prevalent disease among humans. We searched for genes regulated by iron deficiency and its regulated mechanism. cDNA microarrays were performed using Hepa1c1c7 cells treated with 100 μM desferrioxamine (DFO), an iron chelator. Early growth response 1 (Egr1) was upregulated with at least 20-fold increase within 4 h and lasted for 24 h, which was confirmed by qRT-PCR. This activation was not seen by ferric ammonium citrate (FAC). DFO increased the transcriptional activity of Egr1-luc (−604 to +160) and serum response element (SRE)-luc reporters by 2.7-folds. In addition, cycloheximide lowered DFO-induced Egr1 mRNA levels. The upregulation of Egr1 by DFO was accompanied by sustained ERK signals along with phosphorylation of Elk-1. The ERK inhibitor (PD98059) prevented the DFO-induced Egr1 mRNAs. Overexpression of Elk-1 mutant (pElk-1S383A) decreased Egr1 reporter activity. DFO lowered reactive oxygen species (ROS) production and increased caspase 3/7 activity and cell death. DFO-induced iron deficiency upregulates Egr1 in part through transcriptional activation via ERK and Elk-1 signals, which may be important in the regulation of cell death in hepatoma cells. Our study demonstrated that iron depletion controlled the expression of Egr1, which might contribute to decisions about cellular fate in response to iron deficiency.
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  • [1] Akutagawa O(2008)Early growth response-1 mediates downregulation of telomerase in cervical cancer Cancer Sci 99 1401-1406
  • [2] Casey JL(1988)Iron-responsive elements: regulatory RNA sequences that control mRNA levels and translation Science 240 924-928
  • [3] Cavigelli M(1995)Induction of c-fos expression through JNK-mediated TCF/Elk-1 phosphorylation EMBO J 14 5957-5964
  • [4] Chan DA(2002)Role of prolyl hydroxylation in oncogenically stabilized hypoxia-inducible factor-1alpha J Biol Chem 277 40112-40117
  • [5] Collins JF(2005)Identification of differentially expressed genes in response to dietary iron deprivation in rat duodenum Am J Physiol Gastrointest Liver Physiol 288 G964-G971
  • [6] de Belle I(1999)p53 and Egr-1 additively suppress transformed growth in HT1080 cells but Egr-1 counteracts p53-dependent apoptosis Oncogene 18 3633-3642
  • [7] Ganz T(2006)Regulation of iron acquisition and iron distribution in mammals Biochim Biophys Acta 1763 690-699
  • [8] Nemeth E(2012)Hepcidin and iron homeostasis Biochim Biophys Acta 1823 1434-1443
  • [9] Ganz T(1995)Early growth response protein 1 (Egr-1): prototype of a zinc-finger family of transcription factors Prog Nucleic Acid Res Mol Biol 50 191-224
  • [10] Nemeth E(1992)Phosphorylation of transcription factor p62TCF by MAP kinase stimulates ternary complex formation at c-fos promoter Nature 358 414-417