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Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes

The synthesis of adequate amounts of ribosomes is an essential task for the cell. It is therefore not surprising that regulatory circuits exist to organize the synthesis of ribosomal components. It has been shown that defect in ribosome biogenesis (ribosomal stress) induces apoptosis or cell cycle a...

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Autores principales: Gismondi, Angelo, Caldarola, Sara, Lisi, Gaia, Juli, Giada, Chellini, Lidia, Iadevaia, Valentina, Proud, Christopher G., Loreni, Fabrizio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4227798/
https://www.ncbi.nlm.nih.gov/pubmed/25332393
http://dx.doi.org/10.1093/nar/gku996
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author Gismondi, Angelo
Caldarola, Sara
Lisi, Gaia
Juli, Giada
Chellini, Lidia
Iadevaia, Valentina
Proud, Christopher G.
Loreni, Fabrizio
author_facet Gismondi, Angelo
Caldarola, Sara
Lisi, Gaia
Juli, Giada
Chellini, Lidia
Iadevaia, Valentina
Proud, Christopher G.
Loreni, Fabrizio
author_sort Gismondi, Angelo
collection PubMed
description The synthesis of adequate amounts of ribosomes is an essential task for the cell. It is therefore not surprising that regulatory circuits exist to organize the synthesis of ribosomal components. It has been shown that defect in ribosome biogenesis (ribosomal stress) induces apoptosis or cell cycle arrest through activation of the tumor suppressor p53. This mechanism is thought to be implicated in the pathophysiology of a group of genetic diseases such as Diamond Blackfan Anemia which are called ribosomopathies. We have identified an additional response to ribosomal stress that includes the activation of eukaryotic translation elongation factor 2 kinase with a consequent inhibition of translation elongation. This leads to a translational reprogramming in the cell that involves the structurally defined group of messengers called terminal oligopyrimidine (TOP) mRNAs which encode ribosomal proteins and translation factors. In fact, while general protein synthesis is decreased by the impairment of elongation, TOP mRNAs are recruited on polysomes causing a relative increase in the synthesis of TOP mRNA-encoded proteins compared to other proteins. Therefore, in response to ribosomal stress, there is a change in the translation pattern of the cell which may help restore a sufficient level of ribosomes.
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spelling pubmed-42277982014-11-21 Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes Gismondi, Angelo Caldarola, Sara Lisi, Gaia Juli, Giada Chellini, Lidia Iadevaia, Valentina Proud, Christopher G. Loreni, Fabrizio Nucleic Acids Res Molecular Biology The synthesis of adequate amounts of ribosomes is an essential task for the cell. It is therefore not surprising that regulatory circuits exist to organize the synthesis of ribosomal components. It has been shown that defect in ribosome biogenesis (ribosomal stress) induces apoptosis or cell cycle arrest through activation of the tumor suppressor p53. This mechanism is thought to be implicated in the pathophysiology of a group of genetic diseases such as Diamond Blackfan Anemia which are called ribosomopathies. We have identified an additional response to ribosomal stress that includes the activation of eukaryotic translation elongation factor 2 kinase with a consequent inhibition of translation elongation. This leads to a translational reprogramming in the cell that involves the structurally defined group of messengers called terminal oligopyrimidine (TOP) mRNAs which encode ribosomal proteins and translation factors. In fact, while general protein synthesis is decreased by the impairment of elongation, TOP mRNAs are recruited on polysomes causing a relative increase in the synthesis of TOP mRNA-encoded proteins compared to other proteins. Therefore, in response to ribosomal stress, there is a change in the translation pattern of the cell which may help restore a sufficient level of ribosomes. Oxford University Press 2014-11-10 2014-10-20 /pmc/articles/PMC4227798/ /pubmed/25332393 http://dx.doi.org/10.1093/nar/gku996 Text en © The Author(s) 2014. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Molecular Biology
Gismondi, Angelo
Caldarola, Sara
Lisi, Gaia
Juli, Giada
Chellini, Lidia
Iadevaia, Valentina
Proud, Christopher G.
Loreni, Fabrizio
Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title_full Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title_fullStr Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title_full_unstemmed Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title_short Ribosomal stress activates eEF2K–eEF2 pathway causing translation elongation inhibition and recruitment of Terminal Oligopyrimidine (TOP) mRNAs on polysomes
title_sort ribosomal stress activates eef2k–eef2 pathway causing translation elongation inhibition and recruitment of terminal oligopyrimidine (top) mrnas on polysomes
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4227798/
https://www.ncbi.nlm.nih.gov/pubmed/25332393
http://dx.doi.org/10.1093/nar/gku996
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