Structure of the full kinetoplastids mitoribosome and insight on its large subunit maturation
Soufari, H.; Waltz, F.; Parrot, C.; Durrieu, S.; Bochler, A.; Kuhn, L.; Sissler, M.; Hashem, Y.
Show abstract
Kinetoplastids are unicellular eukaryotic parasites responsible for human pathologies such as Chagas disease, sleeping sickness or Leishmaniasis1. They possess a single large mitochondrion, essential for the parasite survival2. In kinetoplastids mitochondrion, most of the molecular machineries and gene expression processes have significantly diverged and specialized, with an extreme example being their mitochondrial ribosomes3. These large complexes are in charge of translating the few essential mRNAs encoded by mitochondrial genomes4,5. Structural studies performed in Trypanosoma brucei already highlighted the numerous peculiarities of these mitoribosomes and the maturation of their small subunit3,6. However, several important aspects mainly related to the large subunit remain elusive, such as the structure and maturation of its ribosomal RNA3. Here, we present a cryo-electron microscopy study of the protozoans Leishmania tarentolae and Trypanosoma cruzi mitoribosomes. For both species, we obtained the structure of their mature mitoribosomes, complete rRNA of the large subunit as well as previously unidentified ribosomal proteins. Most importantly, we introduce the structure of an LSU assembly intermediate in presence of 16 identified maturation factors. These maturation factors act both on the intersubunit and solvent sides of the LSU, where they refold and chemically modify the rRNA and prevent early translation before full maturation of the LSU.Competing Interest StatementThe authors have declared no competing interest.View Full Text
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Allosteric mechanism of transcription inhibition by NusG-dependent pausing of RNA polymerase 96%
- Direct visualization of translational GTPase factor-pool formed around the archaeal ribosomal P-stalk by high-speed atomic force microscopy 96%
- FtsK in motion reveals its mechanism for double-stranded DNA translocation 96%
Similar papers in this journal
- A conserved rRNA switch is central to decoding site maturation on the small ribosomal subunit 98%
- Molecular and structural basis of a subfamily of PrfH rescuing both the damaged and intact ribosomes stalled in translation 97%
- Structural basis of bacteriophage T5 infection trigger and E. coli cell wall perforation 96%
Similar papers in this journal
- Insights into a viral motor: the structure of the HK97 packaging termination assembly 95%
- Structural and Dynamic Basis of DNA Capture and Translocation by Mitochondrial Twinkle Helicase 95%
- Expanding the Landscape of BREX Diversity: Uncovering Multi-Layered Functional Frameworks and Identification of Novel BREX-Related Defense Systems 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.