Induction of protein aggregation and starvation response by tRNA modification defects

Posttranscriptional modifications of anticodon loops contribute to the decoding efficiency of tRNAs by supporting codon recognition and loop stability. Consistently, strong synthetic growth defects are observed in yeast strains simultaneously lacking distinct anticodon loop modifications. These phen...

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Veröffentlicht in:Current genetics 2020-12, Vol.66 (6), p.1053-1057
Hauptverfasser: Klassen, Roland, Bruch, Alexander, Schaffrath, Raffael
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Schaffrath, Raffael
description Posttranscriptional modifications of anticodon loops contribute to the decoding efficiency of tRNAs by supporting codon recognition and loop stability. Consistently, strong synthetic growth defects are observed in yeast strains simultaneously lacking distinct anticodon loop modifications. These phenotypes are accompanied by translational inefficiency of certain mRNAs and disturbed protein homeostasis resulting in accumulation of protein aggregates. Different combinations of anticodon loop modification defects were shown to affect distinct tRNAs but provoke common transcriptional changes that are reminiscent of the cellular response to nutrient starvation. Multiple mechanisms may be involved in mediating inadequate starvation response upon loss of critical tRNA modifications. Recent evidence suggests protein aggregate induction to represent one such trigger.
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subjects Biochemistry
Biomedical and Life Sciences
Cell Biology
Defects
Homeostasis
Life Sciences
Microbial Genetics and Genomics
Microbiology
Mini-Review
Phenotypes
Plant Sciences
Post-transcription
Protein interaction
Proteins
Proteomics
tRNA
tRNA Ala
Yeasts
title Induction of protein aggregation and starvation response by tRNA modification defects
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