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The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels

During protein synthesis, charged tRNAs deliver amino acids to translating ribosomes, and are then re-charged by tRNA synthetases (aaRS). In humans, mutant aaRS cause a diversity of neurological disorders, but their molecular aetiologies are incompletely characterised. To understand system responses...

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Autores principales: McFarland, Matthew R, Keller, Corina D, Childers, Brandon M, Adeniyi, Stephen A, Corrigall, Holly, Raguin, Adélaïde, Romano, M Carmen, Stansfield, Ian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7102972/
https://www.ncbi.nlm.nih.gov/pubmed/32016368
http://dx.doi.org/10.1093/nar/gkaa055
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author McFarland, Matthew R
Keller, Corina D
Childers, Brandon M
Adeniyi, Stephen A
Corrigall, Holly
Raguin, Adélaïde
Romano, M Carmen
Stansfield, Ian
author_facet McFarland, Matthew R
Keller, Corina D
Childers, Brandon M
Adeniyi, Stephen A
Corrigall, Holly
Raguin, Adélaïde
Romano, M Carmen
Stansfield, Ian
author_sort McFarland, Matthew R
collection PubMed
description During protein synthesis, charged tRNAs deliver amino acids to translating ribosomes, and are then re-charged by tRNA synthetases (aaRS). In humans, mutant aaRS cause a diversity of neurological disorders, but their molecular aetiologies are incompletely characterised. To understand system responses to aaRS depletion, the yeast glutamine aaRS gene (GLN4) was transcriptionally regulated using doxycycline by tet-off control. Depletion of Gln4p inhibited growth, and induced a GCN4 amino acid starvation response, indicative of uncharged tRNA accumulation and Gcn2 kinase activation. Using a global model of translation that included aaRS recharging, Gln4p depletion was simulated, confirming slowed translation. Modelling also revealed that Gln4p depletion causes negative feedback that matches translational demand for Gln-tRNA(Gln) to aaRS recharging capacity. This maintains normal charged tRNA(Gln) levels despite Gln4p depletion, confirmed experimentally using tRNA Northern blotting. Model analysis resolves the paradox that Gln4p depletion triggers a GCN4 response, despite maintenance of tRNA(Gln) charging levels, revealing that normally, the aaRS population can sequester free, uncharged tRNAs during aminoacylation. Gln4p depletion reduces this sequestration capacity, allowing uncharged tRNA(Gln) to interact with Gcn2 kinase. The study sheds new light on mutant aaRS disease aetiologies, and explains how aaRS sequestration of uncharged tRNAs can prevent GCN4 activation under non-starvation conditions.
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spelling pubmed-71029722020-04-02 The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels McFarland, Matthew R Keller, Corina D Childers, Brandon M Adeniyi, Stephen A Corrigall, Holly Raguin, Adélaïde Romano, M Carmen Stansfield, Ian Nucleic Acids Res Molecular Biology During protein synthesis, charged tRNAs deliver amino acids to translating ribosomes, and are then re-charged by tRNA synthetases (aaRS). In humans, mutant aaRS cause a diversity of neurological disorders, but their molecular aetiologies are incompletely characterised. To understand system responses to aaRS depletion, the yeast glutamine aaRS gene (GLN4) was transcriptionally regulated using doxycycline by tet-off control. Depletion of Gln4p inhibited growth, and induced a GCN4 amino acid starvation response, indicative of uncharged tRNA accumulation and Gcn2 kinase activation. Using a global model of translation that included aaRS recharging, Gln4p depletion was simulated, confirming slowed translation. Modelling also revealed that Gln4p depletion causes negative feedback that matches translational demand for Gln-tRNA(Gln) to aaRS recharging capacity. This maintains normal charged tRNA(Gln) levels despite Gln4p depletion, confirmed experimentally using tRNA Northern blotting. Model analysis resolves the paradox that Gln4p depletion triggers a GCN4 response, despite maintenance of tRNA(Gln) charging levels, revealing that normally, the aaRS population can sequester free, uncharged tRNAs during aminoacylation. Gln4p depletion reduces this sequestration capacity, allowing uncharged tRNA(Gln) to interact with Gcn2 kinase. The study sheds new light on mutant aaRS disease aetiologies, and explains how aaRS sequestration of uncharged tRNAs can prevent GCN4 activation under non-starvation conditions. Oxford University Press 2020-04-06 2020-02-04 /pmc/articles/PMC7102972/ /pubmed/32016368 http://dx.doi.org/10.1093/nar/gkaa055 Text en © The Author(s) 2020. 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
McFarland, Matthew R
Keller, Corina D
Childers, Brandon M
Adeniyi, Stephen A
Corrigall, Holly
Raguin, Adélaïde
Romano, M Carmen
Stansfield, Ian
The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title_full The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title_fullStr The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title_full_unstemmed The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title_short The molecular aetiology of tRNA synthetase depletion: induction of a GCN4 amino acid starvation response despite homeostatic maintenance of charged tRNA levels
title_sort molecular aetiology of trna synthetase depletion: induction of a gcn4 amino acid starvation response despite homeostatic maintenance of charged trna levels
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7102972/
https://www.ncbi.nlm.nih.gov/pubmed/32016368
http://dx.doi.org/10.1093/nar/gkaa055
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