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Journal ArticleDOI

Protein translation and folding are coupled by an endoplasmic-reticulum-resident kinase

Heather P. Harding, +2 more
- 21 Jan 1999 - 
- Vol. 397, Iss: 6716, pp 271-274
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TLDR
The cloning of perk is described, a gene encoding a type I transmembrane ER-resident protein that contains a protein-kinase domain most similar to that of the known eIF2α kinases, PKR and HRI that implicate PERK in a signalling pathway that attenuates protein translation in response to ER stress.
Abstract
Protein synthesis and the folding of the newly synthesized proteins into the correct three-dimensional structure are coupled in cellular compartments of the exocytosis pathway by a process that modulates the phosphorylation level of eukaryotic initiation factor-2alpha (eIF2alpha) in response to a stress signal from the endoplasmic reticulum (ER). Activation of this process leads to reduced rates of initiation of protein translation during ER stress. Here we describe the cloning of perk, a gene encoding a type I transmembrane ER-resident protein. PERK has a lumenal domain that is similar to the ER-stress-sensing lumenal domain of the ER-resident kinase Ire1, and a cytoplasmic portion that contains a protein-kinase domain most similar to that of the known eIF2alpha kinases, PKR and HRI. ER stress increases PERK's protein-kinase activity and PERK phosphorylates eIF2alpha on serine residue 51, inhibiting translation of messenger RNA into protein. These properties implicate PERK in a signalling pathway that attenuates protein translation in response to ER stress.

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Citations
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Journal ArticleDOI

Activation-dependent substrate recruitment by the eukaryotic translation initiation factor 2 kinase PERK

TL;DR: It is reported that PERK activation and phosphorylation selectively enhance its affinity for the nonphosphorylated eIF2 complex, and this switch correlates with a marked change to the protease sensitivity pattern, indicative of a major conformational change in the PERK kinase domain upon activation.
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Inflammatory cause of metabolic syndrome via brain stress and NF-κB.

TL;DR: Proinflammatory NF-κB pathway has been revealed as a key molecular system for pathologic induction of brain inflammation, which translates overnutrition and resulting intracellular stresses into central neuroendocrine and neural dysregulations of energy, glucose, and cardiovascular homeostasis, collectively leading to metabolic syndrome.
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GCN2 phosphorylation of eIF2α activates NF-κB in response to UV irradiation

TL;DR: In this article, the authors showed that NF-κB in MEF (murine embryo fibroblast) cells is activated by UV-C and UV-B irradiation through a mechanism requiring eIF2α phosphorylation.
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Regulable neural progenitor-specific Tsc1 loss yields giant cells with organellar dysfunction in a model of tuberous sclerosis complex

TL;DR: This TSC brain model provides insights into the pathogenesis and organelle dysfunction of giant cells, as well as epilepsy control in patients with T SC, despite prenatal onset of Tsc1 loss and mTOR complex 1 activation in the developing brain.
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Dengue Virus Modulates the Unfolded Protein Response in a Time-dependent Manner

TL;DR: It is demonstrated that time-dependent activation of the unfolded protein response by DENV-2 can override inhibition of translation, prevent apoptosis, and prolong the viral life cycle.
References
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Journal ArticleDOI

Oligomerization and phosphorylation of the Ire1p kinase during intracellular signaling from the endoplasmic reticulum to the nucleus.

TL;DR: Molecular genetic and biochemical studies described here suggest that, as in the case of growth factor receptors of higher eukaryotic cells, Ire1p oligomerizes in response to the accumulation of unfolded proteins in the ER and is phosphorylated in trans by otherIre1p molecules as a result of oligomerization.
Journal ArticleDOI

Protein folding in the cell.

TL;DR: Folding and assembly of polypeptides in vivo involves other proteins, many of which belong to families that have been highly conserved during evolution.
Journal ArticleDOI

The presence of malfolded proteins in the endoplasmic reticulum signals the induction of glucose-regulated proteins

TL;DR: Testing the hypothesis that the presence of malfolded proteins may be the primary signal for induction of GRPs by expressing wild-type and mutant forms of influenza virus haemagglutinin in simian cells shows that malfoldingper se, rather than abnormal glycosylation1, is the proximal inducer of this family of stress proteins.
Journal ArticleDOI

Transcriptional induction of genes encoding endoplasmic reticulum resident proteins requires a transmembrane protein kinase

TL;DR: IRE1 encodes a transmembrane serine/threonine kinase that it is proposed transmits the unfolded protein signal across the ER or inner nuclear membrane, suggesting that the induction of ER resident proteins is coupled to the biogenesis of new ER membrane.
Journal ArticleDOI

A stress response pathway from the endoplasmic reticulum to the nucleus requires a novel bifunctional protein kinase/endoribonuclease (Ire1p) in mammalian cells

TL;DR: HIre1p is an essential proximal sensor of the unfolded protein response pathway in mammalian cells and is demonstrated to be highly conserved to the yeast counterpart having a Ser/Thr protein kinase domain and a domain homologous to RNase L.
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