Eukaryotic stress granules: the ins and outs of translation.
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Summary
Together, stress granules and P-bodies reveal a dynamic cycle of distinct biochemical and compartmentalized mRNPs in the cytosol, with implications for the control of mRNA function.
- Type
- review
- Published
- 2009-12-24
- Cited by
- 1,498
- References
- 101
- Access
- Open access
- OpenAlex
- https://openalex.org/W2044821390
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:10089326
Keywords
Stress granule, Biology, P-bodies, Translation (biology), Messenger RNA
References
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- The Control of mRNA Decapping and P-Body Formation
- Identification of TIAR as a Protein Binding to the Translational Regulatory AU-rich Element of Tumor Necrosis Factor α mRNA*
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- A role for Q/N-rich aggregation-prone regions in P-body localization
- Disruption of microtubules inhibits cytoplasmic ribonucleoprotein stress granule formation.
- Pathway to totipotency: lessons from germ cells.
- The translational regulator CPEB1 provides a link between dcp1 bodies and stress granules
- Neuronal RNA granules: movers and makers.
- Mammalian stress granules represent sites of accumulation of stalled translation initiation complexes.
- Survival motor neuron protein facilitates assembly of stress granules
- Co-dependent functions of RSK2 and the apoptosis promoting factor, TIA-1, in stress granule assembly and cell survival
- P bodies and the control of mRNA translation and degradation.
- Control of mRNA decay by heat shock-ubiquitin-proteasome pathway.
- Processing bodies and germ granules are distinct RNA granules that interact in C. elegans embryos.
Cited by
- Analysis of RNA helicases in P-bodies and stress granules.
- A Novel Role for hSMG-1 in Stress Granule Formation
- Accumulation of P-bodies in Candida albicans under different stress and filamentous growth conditions.
- On PAR with PARP: cellular stress signaling through poly(ADP-ribose) and PARP-1.
- P-bodies and stress granules: possible roles in the control of translation and mRNA degradation.
- Critical Role of an Antiviral Stress Granule Containing RIG-I and PKR in Viral Detection and Innate Immunity
- The NS1 Protein of Influenza A Virus Interacts with Cellular Processing Bodies and Stress Granules through RNA-Associated Protein 55 (RAP55) during Virus Infection
- Nutritional stress affects an atypical cap-binding protein in Leishmania
- Hypothyroidism in Adult Male Rats Alters Posttranscriptional Mechanisms of Luteinizing Hormone Biosynthesis
- The Role of AEG-1/MTDH/LYRIC in the Pathogenesis of Central Nervous System Disease
- Non-coding RNAs turn up the heat: An emerging layer of novel regulators in the mammalian heat shock response
- The Role Stress Granules and RNA Binding Proteins in Neurodegeneration
- Arabidopsis AtRRP44A Is the Functional Homolog of Rrp44/Dis3, an Exosome Component, Is Essential for Viability and Is Required for RNA Processing and Degradation
- Stress granule formation in Entamoeba histolytica: cross‐talk between EhMLBP, EhRLE3 reverse transcriptase and polyubiquitinated proteins
- Arsenite-Activated JNK Signaling Enhances CPEB4-Vinexin Interaction to Facilitate Stress Granule Assembly and Cell Survival
- G3BP–Caprin1–USP10 complexes mediate stress granule condensation and associate with 40S subunits
- Enterovirus 71 induces anti-viral stress granule-like structures in RD cells
- Reduced stress granule formation and cell death in fibroblasts with the A382T mutation of TARDBP gene: evidence for loss of TDP-43 nuclear function.
- Unr defines a novel class of nucleoplasmic reticulum involved in mRNA translation
- Interaction of 2′,3′-cAMP with Rbp47b Plays a Role in Stress Granule Formation1[OPEN]
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