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RNA Catalyst as a Reporter for Screening Drugs against RNA Editing in Trypanosomes
Published on: July 22, 2014
Trypanosoma brucei multi-aminoacyl-tRNA synthetase complex formation limits promiscuous tRNA proofreading
Rylan R Watkins1, Anna Vradi1, Irina Shulgina1
1Department of Chemistry and Biochemistry, Center for RNA Biology, Ohio State University, Columbus, OH, United States.
Abstract:
Faithful mRNA decoding depends on the accuracy of aminoacyl-tRNA synthetases (ARSs). Aminoacyl-tRNA proofreading mechanisms have been well-described in bacteria, humans, and plants. However, our knowledge of translational fidelity in protozoans is limited. Trypanosoma brucei (Tb) is a eukaryotic, protozoan pathogen that causes Human African Trypanosomiasis, a fatal disease if untreated. Tb undergoes many physiological changes that are dictated by nutrient availability throughout its insect-mammal lifecycle. In the glucose-deprived insect vector, the tsetse fly, Tb use proline to make ATP via mitochondrial respiration. Alanine is one of the major by-products of proline consumption. We hypothesize that the elevated alanine pool challenges Tb prolyl-tRNA synthetase (ProRS), an ARS known to misactivate alanine in all three domains of life, resulting in high levels of misaminoacylated Ala-tRNAPro. Tb encodes two domains that are members of the INS superfamily of aminoacyl-tRNA deacylases. One homolog is appended to the N-terminus of Tb ProRS, and a second is the major domain of multi-aminoacyl-tRNA synthetase complex (MSC)-associated protein 3 (MCP3). Both ProRS and MCP3 are housed in the Tb MSC. Here, we purified Tb ProRS and MCP3 and observed robust Ala-tRNAPro deacylation activity from both enzymes in vitro. Size-exclusion chromatography multi-angle light scattering used to probe the oligomerization state of MCP3 revealed that although its unique N-terminal extension confers homodimerization in the absence of tRNA, the protein binds to tRNA as a monomer. Kinetic assays showed MCP3 alone has relaxed tRNA specificity and promiscuously hydrolyzes cognate Ala-tRNAAla; this activity is significantly reduced in the presence of Tb alanyl-tRNA synthetase, also housed in the MSC. Taken together, our results provide insight into translational fidelity mechanisms in Tb and lay the foundation for exploring MSC-associated proteins as novel drug targets.
Insights
Trypanosoma brucei uses unique deacylases to correct errors in protein synthesis, specifically removing mischarged alanine from proline tRNAs. These findings reveal new insights into translational fidelity and potential drug targets.
Area of Science:
- Molecular Biology
- Biochemistry
- Parasitology
Background:
- Faithful mRNA decoding relies on accurate aminoacyl-tRNA synthetases (ARSs).
- Translational fidelity mechanisms in protozoans like Trypanosoma brucei remain poorly understood.
- Trypanosoma brucei faces challenges in translational fidelity due to metabolic shifts and potential misactivation of alanine by prolyl-tRNA synthetase.
Purpose of the Study:
- To investigate the role of specific deacylases in maintaining translational fidelity in Trypanosoma brucei.
- To characterize the activity of Trypanosoma brucei prolyl-tRNA synthetase (ProRS) and a related deacylase, MCP3, in correcting misacylated tRNAs.
- To explore the potential of these enzymes as drug targets for Human African Trypanosomiasis.
Main Methods:
- Purification of Trypanosoma brucei ProRS and MCP3.
- In vitro enzymatic assays to measure deacylation activity.
- Size-exclusion chromatography multi-angle light scattering to determine MCP3 oligomerization state.
- Kinetic assays to assess tRNA specificity and promiscuous hydrolysis.
Main Results:
- Both purified Tb ProRS and MCP3 exhibit robust in vitro deacylation of mischarged Ala-tRNAPro.
- MCP3 functions as a monomer when binding tRNA, despite its N-terminal extension promoting dimerization in isolation.
- MCP3 shows relaxed tRNA specificity and promiscuously hydrolyzes Ala-tRNAAla, an activity diminished in the presence of Tb alanyl-tRNA synthetase within the multi-aminoacyl-tRNA synthetase complex.
Conclusions:
- Tb ProRS and MCP3 play crucial roles in proofreading and maintaining translational fidelity in Trypanosoma brucei.
- The multi-aminoacyl-tRNA synthetase complex environment modulates the specificity of deacylation activities.
- These findings provide a foundation for developing novel therapeutic strategies targeting translational fidelity in Trypanosoma brucei.
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