Regulation of asparagine synthetase gene transcription by the basic region leucine zipper transcription factors ATF5 and CHOP

2005 ◽  
Vol 386 (9) ◽  
Author(s):  
Jude Al Sarraj ◽  
Charles Vinson ◽  
Gerald Thiel

AbstractAsparagine synthetase catalyses the glutamine- and ATP-dependent conversion of aspartic acid to asparagine. In human hepatoma cells cultured in mediumcontaining amino acids, the mRNA of asparagine synthetase is not detectable by RNase protection mapping. However, maintaining the cells in amino acid-free Krebs-Ringer bicarbonate buffer strongly upregulated asparagine synthetase biosynthesis. The effect of amino acid deprivation on asparagine synthetase gene transcription is mediated by a genetic element termed the nutrient-sensing response unit. Previous studies revealed that the basic region leucine zipper (bZIP) transcription factor CREB2/ATF4 is involved in the nutrient deprivation-induced upregulation of asparagine synthetase gene transcription. Here we show that overexpression of the bZIP protein ATF5, a transcriptional activator, stimulates asparagine synthetase promoter/reporter gene transcription via the nutrient-sensing response unit. In contrast, ATF5 does not transactivate cAMP response element (CRE)-containing reporter genes. Overexpression of the C/EBP homologous transcription factor CHOP impaired transcriptional activation of the asparagine synthetase promoter following amino acid deprivation or over-expression of ATF5 or CREB2/ATF4. These data indicate that CHOP functions as a shut-off-device for nutrient deprivation-induced gene transcription.

2012 ◽  
Vol 443 (1) ◽  
pp. 165-171 ◽  
Author(s):  
Ana Luísa De Sousa-Coelho ◽  
Pedro F. Marrero ◽  
Diego Haro

Nutrient deprivation or starvation frequently correlates with amino acid limitation. Amino acid starvation initiates a signal transduction cascade starting with the activation of the kinase GCN2 (general control non-derepressible 2) phosphorylation of eIF2 (eukaryotic initiation factor 2), global protein synthesis reduction and increased ATF4 (activating transcription factor 4). ATF4 modulates a wide spectrum of genes involved in the adaptation to dietary stress. The hormone FGF21 (fibroblast growth factor 21) is induced during fasting in liver and its expression induces a metabolic state that mimics long-term fasting. Thus FGF21 is critical for the induction of hepatic fat oxidation, ketogenesis and gluconeogenesis, metabolic processes which are essential for the adaptive metabolic response to starvation. In the present study, we have shown that FGF21 is induced by amino acid deprivation in both mouse liver and cultured HepG2 cells. We have identified the human FGF21 gene as a target gene for ATF4 and we have localized two conserved ATF4-binding sequences in the 5′ regulatory region of the human FGF21 gene, which are responsible for the ATF4-dependent transcriptional activation of this gene. These results add FGF21 gene induction to the transcriptional programme initiated by increased levels of ATF4 and offer a new mechanism for the induction of the FGF21 gene expression under nutrient deprivation.


2003 ◽  
Vol 372 (2) ◽  
pp. 603-609 ◽  
Author(s):  
Can ZHONG ◽  
Chin CHEN ◽  
Michael S. KILBERG

Transcription from the human asparagine synthetase (A.S.) gene is increased in response to either amino acid (amino acid response) or glucose (endoplasmic reticulum stress response) deprivation. These two independent nutrient-sensing pathways converge on the same set of genomic cis-elements, referred to as nutrient sensing-response elements (NSREs) 1 and 2, within the A.S. promoter. The present report uses single-nucleotide mutagenesis to confirm that both NSRE-1 and NSRE-2 are absolutely required for gene activation and to identify the boundaries of each binding site. The core sequence of the NSRE-1 site is contained within nucleotides −68 to −60 and the NSRE-2 core sequence is within nucleotides −48 to −43. Through insertion or deletion of 5–10 nucleotides in the intervening sequence between NSRE-1 and NSRE-2, transient transfection studies with an A.S. promoter/reporter gene construct showed that the 11 bp distance between these two elements is critical. These results document that the optimal configuration is with both binding sites on the same side of the DNA helix, only one helical turn away from each other and the data provide support for the hypothesis that a larger multi-protein complex exists between the binding proteins for NSRE-1 and NSRE-2. The data also illustrate that the combination of NSRE-1 and NSRE-2, referred to as the nutrient-sensing response unit (NSRU), has enhancer activity in that it functions in an orientation- and position-independent manner, and conveys nutrient-dependent transcriptional control to a heterologous promoter.


1999 ◽  
Vol 19 (11) ◽  
pp. 7589-7599 ◽  
Author(s):  
Mariano Ubeda ◽  
Mario Vallejo ◽  
Joel F. Habener

ABSTRACT The transcription factor CHOP (C/EBP homologous protein 10) is a bZIP protein induced by a variety of stimuli that evoke cellular stress responses and has been shown to arrest cell growth and to promote programmed cell death. CHOP cannot form homodimers but forms stable heterodimers with the C/EBP family of activating transcription factors. Although initially characterized as a dominant negative inhibitor of C/EBPs in the activation of gene transcription, CHOP-C/EBP can activate certain target genes. Here we show that CHOP interacts with members of the immediate-early response, growth-promoting AP-1 transcription factor family, JunD, c-Jun, and c-Fos, to activate promoter elements in the somatostatin, JunD, and collagenase genes. The leucine zipper dimerization domain is required for interactions with AP-1 proteins and transactivation of transcription. Analyses by electrophoretic mobility shift assays and by an in vivo mammalian two-hybrid system for protein-protein interactions indicate that CHOP interacts with AP-1 proteins inside cells and suggest that it is recruited to the AP-1 complex by a tethering mechanism rather than by direct binding of DNA. Thus, CHOP not only is a negative or a positive regulator of C/EBP target genes but also, when tethered to AP-1 factors, can activate AP-1 target genes. These findings establish the existence of a new mechanism by which CHOP regulates gene expression when cells are exposed to cellular stress.


2000 ◽  
Vol 164 (3) ◽  
pp. R11-R16 ◽  
Author(s):  
A Takenaka ◽  
K Komori ◽  
T Morishita ◽  
SI Takahashi ◽  
T Hidaka ◽  
...  

To investigate the molecular mechanisms of increased transcription of the insulin-like growth factor-binding protein-1 (IGFBP-1) gene in dietary protein-deprived animals, the cis-acting sequence that is involved in this regulation was analyzed. We first showed that IGFBP-1 gene transcription was up-regulated by amino acid deprivation in cultured liver cell lines: H4IIE and HuH-7. Since HuH-7 cells showed a greater increase in IGFBP-1 mRNA in response to amino acid deprivation, this cell line was used in further experiments. Using a promoter function assay, we found that up-regulation of promoter activity responding to amino acid deprivation was abolished by deleting the region between -112 and -81 bp from the cap site from the gene construct. This cis-acting region includes the insulin-responsive element (IRE) and glucocorticoid responsive element (GRE) of IGFBP-1. In summary, the present observation suggests that the 32-bp (-112 to -81) in the IGFBP-1 gene 5' promoter region is involved in the induction of the IGFBP-1 gene in response to amino acid deprivation.


Blood ◽  
2018 ◽  
Vol 132 (Supplement 1) ◽  
pp. 1276-1276
Author(s):  
Nathan Mbong ◽  
John E. Dick ◽  
Peter Van Galen ◽  
Antonija Kreso ◽  
Elvin Wagenblast ◽  
...  

Abstract Lifelong maintenance of the blood system requires equilibrium between clearance of damaged hematopoietic stem cells (HSCs) and long-term survival of the HSC pool. Perturbations of cellular homeostasis such as nutrient deprivation, irradiation, and endoplasmic reticulum stress can result in HSC loss. However, HSCs must survive low-level stressors in order to sustain lifelong replenishment of the hematopoietic system. It is poorly understood how human HSCs balance apoptosis with survival in the context of basal stress, and how adaptive signalling is regulated in leukemia stem cells (LSCs). The Integrated Stress Response (ISR) is an adaptive pathway that can protect cells against stressors such as ROS, nutrient deprivation and misfolded proteins. To assess the expression levels of key ISR pathway components, we analyzed the proteome of purified human HSCs and progenitor cells from cord blood (CB). Quantitative label-free mass spectrometry revealed lower expression of eIF2α, eIF2β and eIF2γ subunits in HSCs compared to downstream progenitors. Furthermore, activated-transcription factor 4 (ATF4) mRNA is highly expressed in HSCs compared to progenitors. Similar to our findings in normal CB cells, analysis of acute myeloid leukemia (AML) patient samples revealed lower protein levels of eIF2α, eIF2β and eIF2γ in phenotypically primitive (CD34+CD38-) compared to differentiated (CD34+CD38+) AML cell populations. These results suggest that primitive cells in normal hematopoiesis and AML are primed for ISR activation.To assess ISR activity in human HSPCs, we used an ATF4 lentiviral reporter (ATF4rep) that measures ISR-induced ATF4 translation. We subjected ATF4rep-transduced CD34+ CB cells to hypoxia and amino acid deprivation, and found that valine depletion strongly induced ATF4rep activity. ATF4rep upregulation was abolished in the presence of an eIF2αS52A mutant that cannot be phosphorylated. Furthermore, knockdown of eIF2α, eIF2β or eIF2γ subunits in CD34+ CB cells increased ATF4rep activity. Thus, low levels of eIF2α, eIF2β or eIF2γ result in efficient ATF4 translation, and nutrient deprivation upregulates ATF4 through eIF2α phosphorylation. We assessed the effect of ATF4 upregulation on CB cell proliferation and survival. Following knockdown of ATF4 mRNA in CD34+ CB cells, the cells were incubated in valine deficient media to induce translational upregulation of ATF4. Valine depletion of shCTRL-transduced cells for 2 days did not affect proliferation or apoptosis, as measured by EdU incorporation or Annexin-V. In contrast, valine depletion of shATF4-transduced cells resulted in decreased proliferation (2-fold, P = 0.0004) and increased apoptosis (4-fold, P < 0.0001,). Thus, ATF4 promotes survival of primitive CD34+ CB cells undergoing valine depletion.We performed in vivo xenograft studies to examine the ISR activity in the best available setting to approximate homeostatic conditions for human HSPCs. Transplantation of ATF4rep-transduced CB cells showed that human HSPCs in the mouse bone marrow maintained a 2.4-fold higher ATF4rep activity compared to downstream progenitors (P = 0.0002). ATF4rep activity further declined in mature monocytes, granulocytes and B-cells (13-fold, P < 0.0001). To determine if high ISR activity is associated with improved HSC function, we transplanted lin- CB cells expressing high ATF4rep activity (GFP-high) and low ATF4rep activity (GFP-low) into mice. The level of engraftment as well as the number of engrafted mice was increased from GFP-high cells compared to GFP-low cells (P = 0.001). The hierarchical structure of normal hematopoiesis is partially maintained in AML. We evaluated ATF4rep expression in the malignant hierarchy and found that 4/5 patient samples had higher ATF4rep expression in CD34+ cells compared to CD34- cells. Furthermore, serial transplantation of ATF4rep-transduced cells showed higher engraftment from GFP-high compared to GFP-low cells ( P < 0.0001). Thus, primary human AML cells that possess high ISR activity are enriched for LSC function.Our data establish that the adaptive ISR pathway plays a key role in maintaining homeostasis of normal and malignant stem cells. We show that Amino acid deprivation activates the ISR in human HSPCs resulting in ATF4-dependent pro-survival signals. In an unperturbed state, HSCs are in a state of primed ISR activity, mechanistically maintained by eIF2 scarcity and high ATF4 levels. Disclosures No relevant conflicts of interest to declare.


2001 ◽  
Vol 21 (14) ◽  
pp. 4441-4452 ◽  
Author(s):  
Sofia Benkhelifa ◽  
Sylvain Provot ◽  
Eugène Nabais ◽  
Alain Eychène ◽  
Georges Calothy ◽  
...  

ABSTRACT We previously described the identification of quail MafA, a novel transcription factor of the Maf bZIP (basic region leucine zipper) family, expressed in the differentiating neuroretina (NR). In the present study, we provide the first evidence that MafA is phosphorylated and that its biological properties strongly rely upon phosphorylation of serines 14 and 65, two residues located in the transcriptional activating domain within a consensus for phosphorylation by mitogen-activated protein kinases and which are conserved among Maf proteins. These residues are phosphorylated by ERK2 but not by p38, JNK, and ERK5 in vitro. However, the contribution of the MEK/ERK pathway to MafA phosphorylation in vivo appears to be moderate, implicating another kinase. The integrity of serine 14 and serine 65 residues is required for transcriptional activity, since their mutation into alanine severely impairs MafA capacity to activate transcription. Furthermore, we show that the MafA S14A/S65A mutant displays reduced capacity to induce expression of QR1, an NR-specific target of Maf proteins. Likewise, the integrity of serines 14 and 65 is essential for the MafA ability to stimulate expression of crystallin genes in NR cells and to induce NR-to-lens transdifferentiation. Thus, the MafA capacity to induce differentiation programs is dependent on its phosphorylation.


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