Transient Inhibition of Translation Initiation by Osmotic Stress*
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Summary
The results suggest that the transient inhibition of translation initiation occurs as a result of a combination of both acute inhibition oftranslation and the long-term activation of translation by the Hog1 pathway.
- Type
- article
- Published
- 2002-04-19
- Cited by
- 139
- References
- 54
- Access
- Open access
- OpenAlex
- https://openalex.org/W1997996317
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:45622908
Keywords
Translation (biology), Osmotic shock, Saccharomyces cerevisiae, Methionine, Protein biosynthesis
References
- Identification of a mouse protein whose homolog in Saccharomyces cerevisiae is a component of the CCR4 transcriptional regulatory complex
- Preparation of high molecular weight RNA.
- Fps1, a yeast member of the MIP family of channel proteins, is a facilitator for glycerol uptake and efflux and is inactive under osmotic stress.
- The HOG pathway controls osmotic regulation of transcription via the stress response element (STRE) of the Saccharomyces cerevisiae CTT1 gene.
- GPD1, which encodes glycerol-3-phosphate dehydrogenase, is essential for growth under osmotic stress in Saccharomyces cerevisiae, and its expression is regulated by the high-osmolarity glycerol response pathway
- A mutation allowing an mRNA secondary structure diminishes translation of Saccharomyces cerevisiae iso-1-cytochrome c
- The TOR nutrient signalling pathway phosphorylates NPR1 and inhibits turnover of the tryptophan permease
- Regulation of translation initiation factors by signal transduction.
- Yeast Saccharomyces cerevisiae selectable markers in pUC18 polylinkers
- Activation of yeast PBS2 MAPKK by MAPKKKs or by binding of an SH3-containing osmosensor.
- A simple, rapid, and sensitive DNA assay procedure.
- A mutant of yeast apparently defective in the initiation of protein synthesis.
- Mouse CAF1, a mouse homologue of the yeast POP2 gene, complements the yeast pop2 null mutation
- A two-component system that regulates an osmosensing MAP kinase cascade in yeast
- Yeast HOG1 MAP kinase cascade is regulated by a multistep phosphorelay mechanism in the SLN1-YPD1-SSK1 "two-component" osmosensor.
- Ssd1p of Saccharomyces cerevisiae Associates with RNA*
- Translational Regulation of Yeast GCN4
- Cell wall and cytoskeleton reorganization as the response to hyperosmotic shock in Saccharomyces cerevisiae
- An MBoC Favorite: TOR controls translation initiation and early G1 progression in yeast
- Ribosome-binding Domain of Eukaryotic Initiation Factor-2 Kinase GCN2 Facilitates Translation Control*
Cited by
- The yeast MAPK Hog1 is not essential for immediate survival under osmostress
- Targeting ricin to the ribosome
- Synthesizing Signaling Pathways from Temporal Phosphoproteomic Data
- Mechanisms and control of mRNA turnover in the yeast saccharomyces cerevisiae.
- Polysome analysis and RNA purification from sucrose gradients.
- SCF cdc4 regulates msn2 and msn4 dependent gene expression to counteract hog1 induced lethality
- Toxicogenomics : a transcriptomics approach to assess the toxicity of 4-nitrophenol to Sachharomyces cerevisiae
- Exploiting the yeast stress-activated signaling network to inform on stress biology and disease signaling
- The Role of the Rck1 and Rck2 Kinases in the Osmotic Stress Response of Budding Yeast
- Study of the termination factor like Dom34-Hbs1 complex : functional analysis of their roles in RNA quality control and in stimulating translation by dissociating inactive ribosomes
- Dynamic transcriptome analysis (DTA): kinetic modeling of synthesis and decay of mRNA transcripts upon perturbation in S.cerevisiae, S.pombe and D.melanogaster.
- Temporal Dissection of Rate Limiting Transcriptional Events Using Pol II ChIP and RNA Analysis of Adrenergic Stress Gene Activation
- Characterization of the SSA and SSE chaperone families in Saccharomyces cerevisiae
- Molecular and genetic characterization of osmosensing and signal transduction in the nematode Caenorhabditis elegans
- Osmostress‐induced gene expression – a model to understand how stress‐activated protein kinases (SAPKs) regulate transcription
- Mechanisms of sphingolipid functions during heat stress in "Saccharomyces cerevisiae"
- The stress‐activated protein kinase Hog1 develops a critical role after resting state
- The Immunosuppressant FK506 Uncovers a Positive Regulatory Cross-talk between the Hog1p and Gcn2p Pathways*
- Environmental stresses and clinical drugs paralyze a cell
- Large P body-like RNPs form in C. elegans oocytes in response to arrested ovulation, heat shock, osmotic stress, and anoxia and are regulated by the major sperm protein pathway.
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