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Yeast mRNA cap-binding protein Cbc1/Sto1 is necessary for the rapid reprogramming of translation after hyperosmotic shock
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scholarly article
1 reference
stated in
PubMed
PubMed ID
22072789
retrieved
1 December 2016
title
Yeast mRNA cap-binding protein Cbc1/Sto1 is necessary for the rapid reprogramming of translation after hyperosmotic shock
(English)
1 reference
stated in
PubMed
PubMed ID
22072789
retrieved
1 December 2016
main subject
cell biology
0 references
Sto1p YMR125W
1 reference
stated in
GOA release 2020-03-11
author
Per Sunnerhagen
series ordinal
5
object named as
Per Sunnerhagen
0 references
author name string
Paula Alepuz
series ordinal
6
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Nikki De Clercq
series ordinal
3
0 references
Nati Blasco-Angulo
series ordinal
4
0 references
Lorena Romero-Santacreu
series ordinal
2
0 references
Elena Garre
series ordinal
1
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language of work or name
English
0 references
publication date
January 2012
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published in
Molecular Biology of the Cell
1 reference
stated in
PubMed
PubMed ID
22072789
retrieved
1 December 2016
volume
23
0 references
issue
1
0 references
page(s)
137-50
0 references
cites work
RNA polymerase II subunits link transcription and mRNA decay to translation.
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The shuttling protein Npl3 promotes translation termination accuracy in Saccharomyces cerevisiae
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A new MIF4G domain-containing protein, CTIF, directs nuclear cap-binding protein CBP80/20-dependent translation
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The DEAD-box RNA helicase Dbp5 functions in translation termination
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Cap-binding protein 1-mediated and eukaryotic translation initiation factor 4E-mediated pioneer rounds of translation in yeast
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The exon junction complex is detected on CBP80-bound but not eIF4E-bound mRNA in mammalian cells: dynamics of mRNP remodeling
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Evidence for a pioneer round of mRNA translation: mRNAs subject to nonsense-mediated decay in mammalian cells are bound by CBP80 and CBP20
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Rck2, a member of the calmodulin-protein kinase family, links protein synthesis to high osmolarity MAP kinase signaling in budding yeast
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Rck2 kinase is a substrate for the osmotic stress-activated mitogen-activated protein kinase Hog1.
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The transcriptional response of Saccharomyces cerevisiae to osmotic shock. Hot1p and Msn2p/Msn4p are required for the induction of subsets of high osmolarity glycerol pathway-dependent genes.
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The yeast splicing factor Mud13p is a commitment complex component and corresponds to CBP20, the small subunit of the nuclear cap-binding complex
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A cap-binding protein complex mediating U snRNA export
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Ribosome association of GCN2 protein kinase, a translational activator of the GCN4 gene of Saccharomyces cerevisiae
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Studies on the transformation of intact yeast cells by the LiAc/SS-DNA/PEG procedure
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Processing bodies require RNA for assembly and contain nontranslating mRNAs
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The product of the yeast UPF1 gene is required for rapid turnover of mRNAs containing a premature translational termination codon
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The mRNA cap-binding complex stimulates the formation of pre-initiation complex at the promoter via its interaction with Mot1p in vivo
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Translational regulation of gene expression during conditions of cell stress
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Inhibition of translation initiation following glucose depletion in yeast facilitates a rationalization of mRNA content
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Translational control of eukaryotic gene expression
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29 September 2017
The cap binding complex influences H2B ubiquitination by facilitating splicing of the SUS1 pre-mRNA
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Stress-dependent coordination of transcriptome and translatome in yeast
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29 September 2017
mRNA stability changes precede changes in steady-state mRNA amounts during hyperosmotic stress
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29 September 2017
Translational control of gene expression from transcripts to transcriptomes
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29 September 2017
Stress resistance and signal fidelity independent of nuclear MAPK function
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29 September 2017
Yeast translational response to high salinity: global analysis reveals regulation at multiple levels
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29 September 2017
Reprogramming mRNA translation during stress
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29 September 2017
Methods for studying signal-dependent regulation of translation factor activity
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29 September 2017
Pioneer round of translation occurs during serum starvation
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29 September 2017
Yeast cap binding complex impedes recruitment of cleavage factor IA to weak termination sites.
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29 September 2017
Accumulation of polyadenylated mRNA, Pab1p, eIF4E, and eIF4G with P-bodies in Saccharomyces cerevisiae
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29 September 2017
Translation-independent inhibition of mRNA deadenylation during stress in Saccharomyces cerevisiae
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29 September 2017
Stressed out! Effects of environmental stress on mRNA metabolism.
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29 September 2017
A nuclear degradation pathway controls the abundance of normal mRNAs in Saccharomyces cerevisiae
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29 September 2017
Yeast shuttling SR proteins Npl3p, Gbp2p, and Hrb1p are part of the translating mRNPs, and Npl3p can function as a translational repressor
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29 September 2017
The pioneer translation initiation complex is functionally distinct from but structurally overlaps with the steady-state translation initiation complex
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29 September 2017
Unique and Redundant Roles for HOG MAPK Pathway Components as Revealed by Whole-Genome Expression Analysis
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29 September 2017
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29 September 2017
The interaction of the cap-binding complex (CBC) with eIF4G is dispensable for translation in yeast
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29 September 2017
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29 September 2017
Interaction of eukaryotic translation initiation factor 4G with the nuclear cap-binding complex provides a link between nuclear and cytoplasmic functions of the m(7) guanosine cap.
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29 September 2017
Mammalian heat shock p70 and histone H4 transcripts, which derive from naturally intronless genes, are immune to nonsense-mediated decay
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29 September 2017
The role of nuclear cap binding protein Cbc1p of yeast in mRNA termination and degradation
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29 September 2017
Genetic and physical interactions involving the yeast nuclear cap-binding complex
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29 September 2017
Mutations in translation initiation factors lead to increased rates of deadenylation and decapping of mRNAs in Saccharomyces cerevisiae
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29 September 2017
Eukaryotic protein synthesis
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29 September 2017
The HOG pathway dictates the short-term translational response after hyperosmotic shock
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2 June 2018
Specific and global regulation of mRNA stability during osmotic stress in Saccharomyces cerevisiae.
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2 June 2018
Transcription in the nucleus and mRNA decay in the cytoplasm are coupled processes
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2 June 2018
The transcriptional response of yeast to saline stress
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2 June 2018
Different signalling pathways contribute to the control of GPD1 gene expression by osmotic stress in Saccharomyces cerevisiae
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2 June 2018
mRNA made during heat shock enters the first round of translation.
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PubMed Central
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27 November 2018
Expression of the HXT13, HXT15 and HXT17 genes in Saccharomyces cerevisiae and stabilization of the HXT1 gene transcript by sugar-induced osmotic stress
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27 November 2018
Cotranscriptional spliceosome assembly occurs in a stepwise fashion and requires the cap binding complex.
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27 November 2018
Nonsense-mediated decay does not occur within the yeast nucleus
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PubMed Central
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27 November 2018
Transient inhibition of translation initiation by osmotic stress
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PubMed Central
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27 November 2018
Importin provides a link between nuclear protein import and U snRNA export.
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PubMed Central
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27 November 2018
Pioneer round of translation mediated by nuclear cap-binding proteins CBP80/20 occurs during prolonged hypoxia
1 reference
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PubMed
reference URL
https://pubmed.ncbi.nlm.nih.gov/22072789
retrieved
12 December 2020
based on heuristic
inferred from PubMed ID database lookup
Ectopic expression of eIF4E-transporter triggers the movement of eIF4E into P-bodies, inhibiting steady-state translation but not the pioneer round of translation
1 reference
stated in
PubMed
reference URL
https://pubmed.ncbi.nlm.nih.gov/22072789
retrieved
12 December 2020
based on heuristic
inferred from PubMed ID database lookup
7The yeast mRNA-binding protein Npl3p interacts with the cap-binding complex
1 reference
stated in
PubMed
reference URL
https://pubmed.ncbi.nlm.nih.gov/22072789
retrieved
12 December 2020
based on heuristic
inferred from PubMed ID database lookup
The Yeast Nuclear Cap Binding Complex Can Interact with Translation Factor eIF4G and Mediate Translation Initiation
1 reference
stated in
PubMed
reference URL
https://pubmed.ncbi.nlm.nih.gov/22072789
retrieved
12 December 2020
based on heuristic
inferred from PubMed ID database lookup
The mechanism of cycloheximide inhibition of protein synthesis in rabbit reticulocytes
1 reference
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PubMed
reference URL
https://pubmed.ncbi.nlm.nih.gov/22072789
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12 December 2020
based on heuristic
inferred from PubMed ID database lookup
Identifiers
DOI
10.1091/MBC.E11-05-0419
1 reference
stated in
Consolidated OpenCitations Corpus – April 2017
OpenCitations bibliographic resource ID
2867134
OpenCitations bibliographic resource ID
2867134
1 reference
stated in
Consolidated OpenCitations Corpus – April 2017
OpenCitations bibliographic resource ID
2867134
PMCID
3248893
1 reference
stated in
Consolidated OpenCitations Corpus – April 2017
OpenCitations bibliographic resource ID
2867134
PubMed ID
22072789
1 reference
stated in
Consolidated OpenCitations Corpus – April 2017
OpenCitations bibliographic resource ID
2867134
ResearchGate publication ID
51786254
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