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Endoplasmic Reticulum Stress Sensing in the Unfolded Protein Response

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TLDR
The mechanistic principles of ER stress sensing are the focus of this review, and yeast Ire1 directly binds to unfolded proteins, which induces its oligomerization and activation.
Abstract
Secretory and transmembrane proteins enter the endoplasmic reticulum (ER) as unfolded proteins and exit as either folded proteins in transit to their target organelles or as misfolded proteins targeted for degradation. The unfolded protein response (UPR) maintains the protein-folding homeostasis within the ER, ensuring that the protein-folding capacity of the ER meets the load of client proteins. Activation of the UPR depends on three ER stress sensor proteins, Ire1, PERK, and ATF6. Although the consequences of activation are well understood, how these sensors detect ER stress remains unclear. Recent evidence suggests that yeast Ire1 directly binds to unfolded proteins, which induces its oligomerization and activation. BiP dissociation from Ire1 regulates this oligomeric equilibrium, ultimately modulating Ire1’s sensitivity and duration of activation. The mechanistic principles of ER stress sensing are the focus of this review.

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Journal ArticleDOI

Unfolded protein response in hepatitis C virus infection.

TL;DR: The UPR signaling pathways involved in HCV infection, the various levels of UPR regulation by different viral proteins and finally, several mechanisms by which the virus provokes the UPR are proposed.
Journal Article

BiP: Master Regulator of the Unfolded Protein Response and Crucial Factor in Flavivirus Biology .

TL;DR: BiP, a chaperone and master regulator of the UPR, has been demonstrated to play a key role in several flavivirus infections and what remains to be discovered is described.
Journal ArticleDOI

Role of the Sigma-1 receptor in Amyotrophic Lateral Sclerosis (ALS).

TL;DR: The proposed amelioration of the ALS phenotype by the S1R is likely due to a “brake” on excitation of the MN as evidenced by a reduction in action potential generation in the MN of the WT when compared to the S 1R KO mouse MN.
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Androgen-regulated metabolism and biosynthesis in prostate cancer

TL;DR: These studies have provided the first systematic evidence that the AR influences metabolism and biosynthesis at key regulatory steps within pathways that have also been defined as points of influence for other oncogenes, including c-Myc, p53 and hypoxia-inducible factor 1α, in other cancers.
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

The Unfolded Protein Response: From Stress Pathway to Homeostatic Regulation

TL;DR: The vast majority of proteins that a cell secretes or displays on its surface first enter the endoplasmic reticulum, where they fold and assemble, and only properly assembled proteins advance from the ER to the cell surface.
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XBP1 mRNA Is Induced by ATF6 and Spliced by IRE1 in Response to ER Stress to Produce a Highly Active Transcription Factor

TL;DR: The transcription factor XBP1, a target of ATF6, is identified as a mammalian substrate of such an unconventional mRNA splicing system and it is shown that only the spliced form of X BP1 can activate the UPR efficiently.
Journal ArticleDOI

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

TL;DR: 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.
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