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Isolation of mRNAs Associated with Yeast Mitochondria to Study Mechanisms of Localized Translation
Published on: March 14, 2014
Yeast mitochondrial biogenesis: a role for the PUF RNA-binding protein Puf3p in mRNA localization
Yann Saint-Georges1, Mathilde Garcia, Thierry Delaveau
1Laboratoire de Génétique Moléculaire CNRS-UMR8541, Ecole Normale Supérieure, Paris, France.
Abstract:
The asymmetric localization of mRNA plays an important role in coordinating posttranscriptional events in eukaryotic cells. We investigated the peripheral mitochondrial localization of nuclear-encoded mRNAs (MLR) in various conditions in which the mRNA binding protein context and the translation efficiency were altered. We identified Puf3p, a Pumilio family RNA-binding protein, as the first trans-acting factor controlling the MLR phenomenon. This allowed the characterization of two classes of genes whose mRNAs are translated to the vicinity of mitochondria. Class I mRNAs (256 genes) have a Puf3p binding motif in their 3'UTR region and many of them have their MLR properties deeply affected by PUF3 deletion. Conversely, mutations in the Puf3p binding motif alter the mitochondrial localization of BCS1 mRNA. Class II mRNAs (224 genes) have no Puf3p binding site and their asymmetric localization is not affected by the absence of PUF3. In agreement with a co-translational import process, we observed that the presence of puromycin loosens the interactions between most of the MLR-mRNAs and mitochondria. Unexpectedly, cycloheximide, supposed to solidify translational complexes, turned out to destabilize a class of mRNA-mitochondria interactions. Classes I and II mRNAs, which are therefore transported to the mitochondria through different pathways, correlated with different functional modules. Indeed, Class I genes code principally for the assembly factors of respiratory chain complexes and the mitochondrial translation machinery (ribosomes and translation regulators). Class II genes encode proteins of the respiratory chain or proteins involved in metabolic pathways. Thus, MLR, which is intimately linked to translation control, and the activity of mRNA-binding proteins like Puf3p, may provide the conditions for a fine spatiotemporal control of mitochondrial protein import and mitochondrial protein complex assembly. This work therefore provides new openings for the global study of mitochondria biogenesis.
Insights
Investigating mRNA localization near mitochondria revealed Puf3p as a key regulator. Two mRNA classes, dependent and independent of Puf3p, exhibit distinct mitochondrial transport pathways, impacting mitochondrial biogenesis.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Asymmetric mRNA localization is crucial for eukaryotic cellular organization.
- Mitochondrial localization of nuclear-encoded mRNAs (MLR) coordinates posttranscriptional events.
- Understanding MLR regulation is key to mitochondrial biogenesis.
Purpose of the Study:
- To identify trans-acting factors controlling MLR.
- To characterize distinct pathways of mRNA transport to mitochondria.
- To elucidate the role of mRNA-binding proteins in MLR.
Main Methods:
- Investigated MLR under altered mRNA-binding protein contexts and translation efficiencies.
- Utilized gene deletion (PUF3 deletion) and mutation analysis.
- Examined effects of puromycin and cycloheximide on mRNA-mitochondria interactions.
Main Results:
- Identified Puf3p as the first trans-acting factor controlling MLR.
- Characterized two classes of MLR mRNAs: Class I (Puf3p-dependent) and Class II (Puf3p-independent).
- Observed distinct transport pathways and functional correlations for Class I and Class II mRNAs.
Conclusions:
- Puf3p regulates MLR through specific binding motifs in Class I mRNAs.
- MLR is linked to translation control, enabling spatiotemporal regulation of mitochondrial protein import.
- This study opens new avenues for understanding mitochondrial biogenesis and protein complex assembly.
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