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Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated

Cellular stress can globally inhibit translation initiation, and glucose removal from yeast causes one of the most dramatic effects in terms of rapidity and scale. Here we show that the same rapid inhibition occurs during yeast growth as glucose levels diminish. We characterize this novel regulation...

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Autores principales: Castelli, Lydia M., Lui, Jennifer, Campbell, Susan G., Rowe, William, Zeef, Leo A. H., Holmes, Leah E. A., Hoyle, Nathaniel P., Bone, Jonathon, Selley, Julian N., Sims, Paul F. G., Ashe, Mark P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3172263/
https://www.ncbi.nlm.nih.gov/pubmed/21795399
http://dx.doi.org/10.1091/mbc.E11-02-0153
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author Castelli, Lydia M.
Lui, Jennifer
Campbell, Susan G.
Rowe, William
Zeef, Leo A. H.
Holmes, Leah E. A.
Hoyle, Nathaniel P.
Bone, Jonathon
Selley, Julian N.
Sims, Paul F. G.
Ashe, Mark P.
author_facet Castelli, Lydia M.
Lui, Jennifer
Campbell, Susan G.
Rowe, William
Zeef, Leo A. H.
Holmes, Leah E. A.
Hoyle, Nathaniel P.
Bone, Jonathon
Selley, Julian N.
Sims, Paul F. G.
Ashe, Mark P.
author_sort Castelli, Lydia M.
collection PubMed
description Cellular stress can globally inhibit translation initiation, and glucose removal from yeast causes one of the most dramatic effects in terms of rapidity and scale. Here we show that the same rapid inhibition occurs during yeast growth as glucose levels diminish. We characterize this novel regulation showing that it involves alterations within the 48S preinitiation complex. In particular, the interaction between eIF4A and eIF4G is destabilized, leading to a temporary stabilization of the eIF3–eIF4G interaction on the 48S complex. Under such conditions, specific mRNAs that are important for the adaptation to the new conditions must continue to be translated. We have determined which mRNAs remain translated early after glucose starvation. These experiments enable us to provide a physiological context for this translational regulation by ascribing defined functions that are translationally maintained or up-regulated. Overrepresented in this class of mRNA are those involved in carbohydrate metabolism, including several mRNAs from the pentose phosphate pathway. Our data support a hypothesis that a concerted preemptive activation of the pentose phosphate pathway, which targets both mRNA transcription and translation, is important for the transition from fermentative to respiratory growth in yeast.
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spelling pubmed-31722632011-11-30 Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated Castelli, Lydia M. Lui, Jennifer Campbell, Susan G. Rowe, William Zeef, Leo A. H. Holmes, Leah E. A. Hoyle, Nathaniel P. Bone, Jonathon Selley, Julian N. Sims, Paul F. G. Ashe, Mark P. Mol Biol Cell Articles Cellular stress can globally inhibit translation initiation, and glucose removal from yeast causes one of the most dramatic effects in terms of rapidity and scale. Here we show that the same rapid inhibition occurs during yeast growth as glucose levels diminish. We characterize this novel regulation showing that it involves alterations within the 48S preinitiation complex. In particular, the interaction between eIF4A and eIF4G is destabilized, leading to a temporary stabilization of the eIF3–eIF4G interaction on the 48S complex. Under such conditions, specific mRNAs that are important for the adaptation to the new conditions must continue to be translated. We have determined which mRNAs remain translated early after glucose starvation. These experiments enable us to provide a physiological context for this translational regulation by ascribing defined functions that are translationally maintained or up-regulated. Overrepresented in this class of mRNA are those involved in carbohydrate metabolism, including several mRNAs from the pentose phosphate pathway. Our data support a hypothesis that a concerted preemptive activation of the pentose phosphate pathway, which targets both mRNA transcription and translation, is important for the transition from fermentative to respiratory growth in yeast. The American Society for Cell Biology 2011-09-15 /pmc/articles/PMC3172263/ /pubmed/21795399 http://dx.doi.org/10.1091/mbc.E11-02-0153 Text en © 2011 Castelli et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society of Cell Biology.
spellingShingle Articles
Castelli, Lydia M.
Lui, Jennifer
Campbell, Susan G.
Rowe, William
Zeef, Leo A. H.
Holmes, Leah E. A.
Hoyle, Nathaniel P.
Bone, Jonathon
Selley, Julian N.
Sims, Paul F. G.
Ashe, Mark P.
Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title_full Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title_fullStr Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title_full_unstemmed Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title_short Glucose depletion inhibits translation initiation via eIF4A loss and subsequent 48S preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
title_sort glucose depletion inhibits translation initiation via eif4a loss and subsequent 48s preinitiation complex accumulation, while the pentose phosphate pathway is coordinately up-regulated
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3172263/
https://www.ncbi.nlm.nih.gov/pubmed/21795399
http://dx.doi.org/10.1091/mbc.E11-02-0153
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