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The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function

Ribosomal Protein (Rp) gene haploinsufficiency affects translation rate, can lead to protein aggregation, and causes cell elimination by competition with wild type cells in mosaic tissues. We find that the modest changes in ribosomal subunit levels observed were insufficient for these effects, which...

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Autores principales: Kiparaki, Marianthi, Khan, Chaitali, Folgado-Marco, Virginia, Chuen, Jacky, Moulos, Panagiotis, Baker, Nicholas E
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8933008/
https://www.ncbi.nlm.nih.gov/pubmed/35179490
http://dx.doi.org/10.7554/eLife.71705
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author Kiparaki, Marianthi
Khan, Chaitali
Folgado-Marco, Virginia
Chuen, Jacky
Moulos, Panagiotis
Baker, Nicholas E
author_facet Kiparaki, Marianthi
Khan, Chaitali
Folgado-Marco, Virginia
Chuen, Jacky
Moulos, Panagiotis
Baker, Nicholas E
author_sort Kiparaki, Marianthi
collection PubMed
description Ribosomal Protein (Rp) gene haploinsufficiency affects translation rate, can lead to protein aggregation, and causes cell elimination by competition with wild type cells in mosaic tissues. We find that the modest changes in ribosomal subunit levels observed were insufficient for these effects, which all depended on the AT-hook, bZip domain protein Xrp1. Xrp1 reduced global translation through PERK-dependent phosphorylation of eIF2α. eIF2α phosphorylation was itself sufficient to enable cell competition of otherwise wild type cells, but through Xrp1 expression, not as the downstream effector of Xrp1. Unexpectedly, many other defects reducing ribosome biogenesis or function (depletion of TAF1B, eIF2, eIF4G, eIF6, eEF2, eEF1α1, or eIF5A), also increased eIF2α phosphorylation and enabled cell competition. This was also through the Xrp1 expression that was induced in these depletions. In the absence of Xrp1, translation differences between cells were not themselves sufficient to trigger cell competition. Xrp1 is shown here to be a sequence-specific transcription factor that regulates transposable elements as well as single-copy genes. Thus, Xrp1 is the master regulator that triggers multiple consequences of ribosomal stresses and is the key instigator of cell competition.
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spelling pubmed-89330082022-03-19 The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function Kiparaki, Marianthi Khan, Chaitali Folgado-Marco, Virginia Chuen, Jacky Moulos, Panagiotis Baker, Nicholas E eLife Cell Biology Ribosomal Protein (Rp) gene haploinsufficiency affects translation rate, can lead to protein aggregation, and causes cell elimination by competition with wild type cells in mosaic tissues. We find that the modest changes in ribosomal subunit levels observed were insufficient for these effects, which all depended on the AT-hook, bZip domain protein Xrp1. Xrp1 reduced global translation through PERK-dependent phosphorylation of eIF2α. eIF2α phosphorylation was itself sufficient to enable cell competition of otherwise wild type cells, but through Xrp1 expression, not as the downstream effector of Xrp1. Unexpectedly, many other defects reducing ribosome biogenesis or function (depletion of TAF1B, eIF2, eIF4G, eIF6, eEF2, eEF1α1, or eIF5A), also increased eIF2α phosphorylation and enabled cell competition. This was also through the Xrp1 expression that was induced in these depletions. In the absence of Xrp1, translation differences between cells were not themselves sufficient to trigger cell competition. Xrp1 is shown here to be a sequence-specific transcription factor that regulates transposable elements as well as single-copy genes. Thus, Xrp1 is the master regulator that triggers multiple consequences of ribosomal stresses and is the key instigator of cell competition. eLife Sciences Publications, Ltd 2022-02-18 /pmc/articles/PMC8933008/ /pubmed/35179490 http://dx.doi.org/10.7554/eLife.71705 Text en © 2022, Kiparaki et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Kiparaki, Marianthi
Khan, Chaitali
Folgado-Marco, Virginia
Chuen, Jacky
Moulos, Panagiotis
Baker, Nicholas E
The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title_full The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title_fullStr The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title_full_unstemmed The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title_short The transcription factor Xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
title_sort transcription factor xrp1 orchestrates both reduced translation and cell competition upon defective ribosome assembly or function
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8933008/
https://www.ncbi.nlm.nih.gov/pubmed/35179490
http://dx.doi.org/10.7554/eLife.71705
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