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Reference - PMID:34634819 - Translational activators and mitoribosomal isoforms cooperate to mediate mRNA-specific translation in Schizosaccharomyces pombe mitochondria.

Reference summary

PubMed ID
PMID:34634819
Title
Translational activators and mitoribosomal isoforms cooperate to mediate mRNA-specific translation in Schizosaccharomyces pombe mitochondria.
Authors
Herbert CJ, Labarre-Mariotte S, Cornu D, Sophie C, Panozzo C, Michel T, Dujardin G, Bonnefoy N
Citation
Nucleic Acids Res 2021 Nov 08;49(19):11145-11166
Publication year
2021
Abstract
Mitochondrial mRNAs encode key subunits of the oxidative phosphorylation complexes that produce energy for the cell. In Saccharomyces cerevisiae, mitochondrial translation is under the control of translational activators, specific to each mRNA. In Schizosaccharomyces pombe, which more closely resembles the human system by its mitochondrial DNA structure and physiology, most translational activators appear to be either lacking, or recruited for post-translational functions. By combining bioinformatics, genetic and biochemical approaches we identified two interacting factors, Cbp7 and Cbp8, controlling Cytb production in S. pombe. We show that their absence affects cytb mRNA stability and impairs the detection of the Cytb protein. We further identified two classes of Cbp7/Cbp8 partners and showed that they modulated Cytb or Cox1 synthesis. First, two isoforms of bS1m, a protein of the small mitoribosomal subunit, that appear mutually exclusive and confer translational specificity. Second, a complex of four proteins dedicated to Cox1 synthesis, which includes an RNA helicase that interacts with the mitochondrial ribosome. Our results suggest that S. pombe contains, in addition to complexes of translational activators, a heterogeneous population of mitochondrial ribosomes that could specifically modulate translation depending on the mRNA translated, in order to optimally balance the production of different respiratory complex subunits.

Annotation

GO biological process

GO:0032543 - mitochondrial translation

Genes:

GO:0070124 - mitochondrial translational initiation

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GO cellular component

GO:0005763 - mitochondrial small ribosomal subunit

Genes:

GO:0005739 - mitochondrion

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GO:0180049 - Mrh5C translation activator complex

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GO molecular function

GO:0180065 - mitochondrial small ribosomal subunit binding

Genes:

GO:0008494 - translation activator activity

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GO:0045182 - translation regulator activity

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Multi-locus phenotype

FYPO:0000251 - decreased cell population growth on galactose carbon source

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Genotypes:

FYPO:0003915 - decreased mitochondrial protein level

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FYPO:0005261 - increased cell population growth on galactose carbon source

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FYPO:0003731 - normal growth on galactose carbon source

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FYPO:0002060 - viable vegetative cell population

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Single locus phenotype

FYPO:0003730 - abolished cell population growth on galactose carbon source

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FYPO:0007623 - decreased mitochondrial respiratory chain complex III assembly

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FYPO:0003423 - decreased mitochondrial RNA level

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FYPO:0002056 - decreased mitochondrial translation

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FYPO:0002797 - decreased protein degradation

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FYPO:0000835 - decreased protein level

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FYPO:0006446 - increased mitochondrial pre-mRNA level

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Genotypes:

FYPO:0002061 - inviable vegetative cell population

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FYPO:0001437 - normal growth on antimycin A

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FYPO:0001983 - protein absent from cell

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Genotypes:

FYPO:0004751 - resistance to G418

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Genotypes:

FYPO:0002060 - viable vegetative cell population

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Orthologs