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RNA Catalyst as a Reporter for Screening Drugs against RNA Editing in Trypanosomes
Published on: July 22, 2014
REH2C Helicase and GRBC Subcomplexes May Base Pair through mRNA and Small Guide RNA in Kinetoplastid Editosomes
Vikas Kumar1, Bhaskara R Madina1, Shelly Gulati2
1From the Department of Biochemistry and Biophysics, Texas A&M University, College Station, Texas 77843.
Abstract:
Mitochondrial mRNAs in Trypanosoma brucei undergo extensive insertion and deletion of uridylates that are catalyzed by the RNA editing core complex (RECC) and directed by hundreds of small guide RNAs (gRNAs) that base pair with mRNA. RECC is largely RNA-free, and accessory mitochondrial RNA-binding complex 1 (MRB1) variants serve as scaffolds for the assembly of mRNA-gRNA hybrids and RECC. However, the molecular steps that create higher-order holoenzymes ("editosomes") are unknown. Previously, we identified an RNA editing helicase 2-associated subcomplex (REH2C) and showed that REH2 binds RNA. Here we showed that REH2C is an mRNA-associated ribonucleoprotein (mRNP) subcomplex with editing substrates, intermediates, and products. We isolated this mRNP from mitochondria lacking gRNA-bound RNP (gRNP) subcomplexes and identified REH2-associated cofactors 1 and 2 ((H2)F1 and (H2)F2). (H2)F1 is an octa-zinc finger protein required for mRNP-gRNP docking, pre-mRNA and RECC loading, and RNP formation with a short synthetic RNA duplex. REH2 and other eukaryotic DEAH/RHA-type helicases share a conserved regulatory C-terminal domain cluster that includes an oligonucleotide-binding fold. Recombinant REH2 and (H2)F1 constructs associate in a purified complex in vitro. We propose a model of stepwise editosome assembly that entails controlled docking of mRNP and gRNP modules via specific base pairing between their respective mRNA and gRNA cargo and regulatory REH2 and (H2)F1 subunits of the novel mRNP that may control specificity checkpoints in the editing pathway.
Insights
The study reveals how the RNA editing core complex (RECC) assembles into "editosomes" in Trypanosoma brucei. A novel mRNA-associated ribonucleoprotein (mRNP) complex, containing REH2 and (H2)F1, facilitates the docking of mRNA and guide RNA (gRNA) complexes, crucial for mitochondrial RNA editing.
Area of Science:
- Molecular biology
- Biochemistry
- Genetics
Background:
- Mitochondrial mRNAs in Trypanosoma brucei undergo extensive uridylate insertion/deletion catalyzed by the RNA editing core complex (RECC).
- Assembly of RECC with guide RNAs (gRNAs) and mRNAs into higher-order holoenzymes, termed
Purpose of the Study:
- To elucidate the molecular mechanisms underlying the assembly of mitochondrial RNA editing complexes.
- To identify novel components and their roles in the formation of functional editosomes.
Main Methods:
- Isolation and characterization of an mRNA-associated ribonucleoprotein (mRNP) subcomplex from Trypanosoma brucei mitochondria.
- Identification of REH2-associated cofactors (H2)F1 and (H2)F2.
- In vitro complex formation assays using recombinant proteins.
Main Results:
- The REH2-associated subcomplex (REH2C) was identified as an mRNP containing editing substrates.
- (H2)F1, an octa-zinc finger protein, is essential for docking mRNP and gRNA-RNP subcomplexes and loading RECC.
- Recombinant REH2 and (H2)F1 associate in vitro, suggesting a direct interaction.
Conclusions:
- A model for stepwise editosome assembly is proposed, involving the docking of mRNP and gRNP modules.
- The REH2/(H2)F1 containing mRNP plays a critical role in orchestrating the assembly of the RNA editing machinery.
- This highlights a novel mechanism for specificity control in mitochondrial RNA editing.
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