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Riha, J.

Publications and source records attributed to Riha, J..

2 recordsLinked to original sources

A p32 family RNA editing factor acts in mitochondrial ribosome biogenesis

Biogenesis of mitochondrial ribosomes (mitoribosomes) in the unicellular parasite Trypanosoma brucei requires an exceptionally large toolkit of assembly factors, identified in stable precursors of large and small mitoribosomal subunits (mtLSU and mtSSU) by cryoEM. Here, using genetic modifications and proteomic characterization of the immunoprecipitated assemblosome, the earliest characterized mtSSU precursor, we determined that a cap of its distinctive protrusion of hitherto unknown composition consists of a p22 homotrimer. This protein was previously implicated in the uridine-insertion editing of the cytochrome c oxidase subunit II transcript. Our functional analysis confirmed this role but revealed that its ablation also causes a loss of mtSSU and a systemic reduction in mitochondrial translation, phenocopying the depletion of established mitoribosomal assembly factors. Consequently, the oxidative phosphorylation system and mitochondrial function are compromised. The p22 protein belongs to the p32 family. We showed that five of its six trypanosomal members are involved in mtSSU biogenesis. Notably, p32 proteins are associated with mitoribosomes in two other distant eukaryotic lineages. A eukaryote-wide mapping of p32 proteins documented that their presence correlates with the retention of mitochondrial genomes. Together, our findings redefine trypanosomal p22 as a dual-function coordinator of mitochondrial gene expression and reveal that the ancestral role of the p32 family is associated with mitochondrial translation.

molecular biology↗

Distinct roles of three trypanosomal Oxa1 insertases in biogenesis of mitochondrial membrane complexes

The insertase Oxa1 is required for protein insertion into the inner mitochondrial membrane and for the biogenesis of oxidative phosphorylation complexes. While most eukaryotes encode one or two Oxa1 proteins, we identified three paralogs in Trypanosoma brucei: TbOxa1-1, TbOxa1-2, and TbOxa1-3. Knock-out of individual paralogs followed by phenotypic analyses and proteomic characterization of submitochondrial fractions revealed distinct functions. Respiratory chain complexes I and IV are primarily affected by loss of TbOxa1-1, whereas complex III and ATP synthase depend on TbOxa1-2; the ablation of TbOxa1-3 results in minor phenotypes in culture. In TbOxa1-2-depleted cells, ATP synthase biogenesis is compromised by the defective import or processing of the nuclear-encoded subunit-c, which also requires a rhomboid peptidase-like protein. Further, the ablation of TbOxa1-2 triggers accumulation of membrane proteins in the matrix, supporting its role in conservative sorting. Together, our results demonstrate that the trypanosomal Oxa1 machinery evolved a paralog-specific division of labor to manage a highly divergent mitochondrial membrane proteome.

biochemistry↗