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Mitochondrial MRNA and the Small Subunit RRNA in Budding Yeasts Undergo 3'-end Processing at Conserved Species-specific Elements

Overview
Journal RNA
Specialty Molecular Biology
Date 2024 Nov 21
PMID 39572231
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Abstract

Respiration in eukaryotes depends on mitochondrial protein synthesis, which is performed by organelle-specific ribosomes translating organelle-encoded mRNAs. Although RNA maturation and stability are central events controlling mitochondrial gene expression, many of the molecular details in this pathway remain elusive. These include and -regulatory factors that generate and protect the 3' ends. Here, we mapped the 3' ends of mitochondrial mRNAs of yeasts classified into multiple families of the subphylum Saccharomycotina. We found that the processing of mitochondrial 15S rRNA and mRNAs involves species-specific sequence elements, which we term 3'-end RNA processing elements (3'-RPEs). In the 3'-RPE has long been recognized as a conserved dodecamer sequence, which recent studies have shown specifically interacts with the nuclear genome-encoded pentatricopeptide repeat protein Rmd9. We also demonstrate that, analogous to Rmd9 in , two Rmd9 orthologs from the family interact with their respective 3'-RPEs found in mRNAs and 15S rRNA. Thus, Rmd9-dependent processing of mitochondrial RNA precursors may be a common mechanism among the families of the Saccharomycotina subphylum. Surprisingly, we observed that 3'-RPEs often occur upstream of stop codons in complex I subunit mRNAs from yeasts of the CUG-Ser1 clade. We examined two of these mature mRNAs and found that their stop codons are indeed removed. Thus, translation of these stop-codon-less transcripts would require a noncanonical termination mechanism. Our findings highlight Rmd9 as a key evolutionarily conserved factor in both mitochondrial mRNA metabolism and mitoribosome biogenesis in a variety of yeasts.

References
1.
Zeng R, Smith E, Barrientos A . Yeast Mitoribosome Large Subunit Assembly Proceeds by Hierarchical Incorporation of Protein Clusters and Modules on the Inner Membrane. Cell Metab. 2018; 27(3):645-656.e7. PMC: 5951612. DOI: 10.1016/j.cmet.2018.01.012. View

2.
Sanson G, Briones M . Typing of Candida glabrata in clinical isolates by comparative sequence analysis of the cytochrome c oxidase subunit 2 gene distinguishes two clusters of strains associated with geographical sequence polymorphisms. J Clin Microbiol. 2000; 38(1):227-35. PMC: 88700. DOI: 10.1128/JCM.38.1.227-235.2000. View

3.
Harper N, Burnside C, Klinge S . Principles of mitoribosomal small subunit assembly in eukaryotes. Nature. 2022; 614(7946):175-181. PMC: 9892005. DOI: 10.1038/s41586-022-05621-0. View

4.
Papadimitriou A, Gross H . Pre-tRNA 3'-processing in Saccharomyces cerevisiae. Purification and characterization of exo- and endoribonucleases. Eur J Biochem. 1996; 242(3):747-59. DOI: 10.1111/j.1432-1033.1996.0747r.x. View

5.
Read L, Lukes J, Hashimi H . Trypanosome RNA editing: the complexity of getting U in and taking U out. Wiley Interdiscip Rev RNA. 2015; 7(1):33-51. PMC: 4835692. DOI: 10.1002/wrna.1313. View