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Possling, A.

Publications and source records attributed to Possling, A..

2 recordsLinked to original sources

TgmRHel drives unified RNA processing of coxI mRNA generated from a complex mitochondrial genomic context

The mitochondrial genome of Toxoplasma gondii is highly fragmented and recombination-prone, creating a structurally dynamic genetic landscape. How such a genome is used efficiently to produce functional mRNAs remains unclear: it is unknown whether transcription draws from many alternative genomic configurations or a restricted subset, and how any resulting precursor RNAs are processed into mature transcripts. More broadly, mitochondrial RNA processing mechanisms in this system are poorly understood. Here, we show that recombination of the T. gondii mitochondrial genome generates a diverse population of structurally distinct precursor RNAs for the essential cytochrome c oxidase subunit I (coxI) protein. Rather than being derived from a single defined primary transcript, these heterogeneous precursors are unified into a single mature mRNA through a post-transcriptional mechanism dependent on the DEAD-box RNA helicase TgmRHel. TgmRHel is required for 5'-end processing of coxI mRNA and for the accumulation of mitochondrial rRNAs, both of which are essential for Complex IV biogenesis, oxidative phosphorylation, and parasite survival. Loss of TgmRHel leads to the accumulation of diverse coxI precursor RNAs and a failure to generate the mature transcript. Our findings reveal an unexpected genome-transcriptome interface in which extensive genomic variability is not suppressed at the DNA level but instead resolved through RNA helicase-mediated processing. This work establishes a new conceptual framework for how gene expression fidelity can be maintained in the context of highly dynamic, recombining genomes.

molecular biology↗

Helical Repeat Protein mRSiC is Required for rRNA Fragment Accumulation in T. gondii Mitochondria

Myzozoans, including apicomplexan parasites, possess highly reduced and unusual mitochondrial genomes that encode two to three respiratory chain subunits and extensively fragmented rRNAs forming a divergent mitoribosome. Heptatricopeptide repeat (HPR) proteins are expanded in myzozoans, with some functioning as mitoribosomal constitutes. Additional HPR proteins have been proposed to function in post-transcriptional processes of mitochondrial gene expression, though their specific roles remain unexplored. We present a phylogenetic analysis of HPR proteins that reveals extensive lineage-specific expansions, consistent with diversifications of mitochondrial gene expression systems within myzozoans. We further characterize mRSiC, a coccidian-specific HPR found in Toxoplasma gondii and its closest relatives. Using sRNA sequencing and RNA gel blot analyses, we show that mRSiC is required for the stabilization of two coccidian-specific mitochondrial sRNAs, RNA33 and RNA42. Loss of mRSiC causes rapid depletion of these RNAs, followed by secondary reductions of rRNA fragments, defects in the respiratory chain, and impaired parasite proliferation. Together, these findings highlight the importance of HPRs in apicomplexan mitochondrial gene expression and illustrate how lineage-specific RNA-binding factors support highly derived mitochondrial expression systems.

molecular biology↗