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Sample Preparation for Mass Spectrometry-based Identification of RNA-binding Regions
Published on: September 28, 2017
Transcriptome-Wide Identification of Coding and Noncoding RNA-Binding Proteins Defines the Comprehensive RNA
Karunakaran Kalesh1, Wenbin Wei2, Brian S Mantilla2
1Department of Chemistry, Durham Universitygrid.8250.f, Durham, United Kingdom.
Abstract:
Proteomic profiling of RNA-binding proteins in Leishmania is currently limited to polyadenylated mRNA-binding proteins, leaving proteins that interact with nonadenylated RNAs, including noncoding RNAs and pre-mRNAs, unidentified. Using a combination of unbiased orthogonal organic phase separation methodology and tandem mass tag-labeling-based high resolution quantitative proteomic mass spectrometry, we robustly identified 2,417 RNA-binding proteins, including 1289 putative novel non-poly(A)-RNA-binding proteins across the two main Leishmania life cycle stages. Eight out of 20 Leishmania deubiquitinases, including the recently characterized L. mexicana DUB2 with an elaborate RNA-binding protein interactome were exclusively identified in the non-poly(A)-RNA-interactome. Additionally, an increased representation of WD40 repeat domains were observed in the Leishmania non-poly(A)-RNA-interactome, thus uncovering potential involvement of this protein domain in RNA-protein interactions in Leishmania. We also characterize the protein-bound RNAs using RNA-sequencing and show that in addition to protein coding transcripts ncRNAs are also enriched in the protein-RNA interactome. Differential gene expression analysis revealed enrichment of 142 out of 195 total L. mexicana protein kinase genes in the protein-RNA-interactome, suggesting important role of protein-RNA interactions in the regulation of the Leishmania protein kinome. Additionally, we characterize the quantitative changes in RNA-protein interactions in hundreds of Leishmania proteins following inhibition of heat shock protein 90 (Hsp90). Our results show that the Hsp90 inhibition in Leishmania causes widespread disruption of RNA-protein interactions in ribosomal proteins, proteasomal proteins and translation factors in both life cycle stages, suggesting downstream effect of the inhibition on protein synthesis and degradation pathways in Leishmania. This study defines the comprehensive RNA interactome of Leishmania and provides in-depth insight into the widespread involvement of RNA-protein interactions in Leishmania biology. IMPORTANCE Advances in proteomics and mass spectrometry have revealed the mRNA-binding proteins in many eukaryotic organisms, including the protozoan parasites Leishmania spp., the causative agents of leishmaniasis, a major infectious disease in over 90 tropical and subtropical countries. However, in addition to mRNAs, which constitute only 2 to 5% of the total transcripts, many types of non-coding RNAs participate in crucial biological processes. In Leishmania, RNA-binding proteins serve as primary gene regulators. Therefore, transcriptome-wide identification of RNA-binding proteins is necessary for deciphering the distinctive posttranscriptional mechanisms of gene regulation in Leishmania. Using a combination of highly efficient orthogonal organic phase separation method and tandem mass tag-labeling-based quantitative proteomic mass spectrometry, we provide unprecedented comprehensive molecular definition of the total RNA interactome across the two main Leishmania life cycle stages. In addition, we characterize for the first time the quantitative changes in RNA-protein interactions in Leishmania following inhibition of heat shock protein 90, shedding light into hitherto unknown large-scale downstream molecular effect of the protein inhibition in the parasite. This work provides insight into the importance of total RNA-protein interactions in Leishmania, thus significantly expanding our knowledge of the emergence of RNA-protein interactions in Leishmania biology.
Insights
This study identifies 2,417 RNA-binding proteins in Leishmania, including novel proteins interacting with non-polyadenylated RNAs. Heat shock protein 90 inhibition disrupts RNA-protein interactions, revealing new insights into parasite biology.
Area of Science:
- Proteomics and Parasitology
- Molecular Biology and Genetics
Background:
- Current understanding of RNA-binding proteins in Leishmania is limited to those interacting with polyadenylated mRNA.
- Noncoding RNAs and pre-mRNAs also interact with proteins, playing crucial roles in biological processes.
- Identifying the full spectrum of RNA-binding proteins is essential for understanding gene regulation in Leishmania.
Purpose of the Study:
- To comprehensively identify all RNA-binding proteins (RBPs) in Leishmania across its life cycle stages.
- To characterize proteins interacting with non-polyadenylated RNAs, including noncoding RNAs.
- To investigate the impact of heat shock protein 90 (Hsp90) inhibition on RNA-protein interactions.
Main Methods:
- Utilized unbiased orthogonal organic phase separation and tandem mass tag-labeling quantitative proteomic mass spectrometry.
- Employed RNA-sequencing to characterize protein-bound RNAs.
- Performed differential gene expression analysis and Hsp90 inhibition experiments.
Main Results:
- Identified 2,417 RNA-binding proteins, with 1289 novel putative non-poly(A)-RNA-binding proteins.
- Found deubiquitinases and WD40 repeat domains enriched in the non-poly(A)-RNA interactome.
- Demonstrated that Hsp90 inhibition causes widespread disruption of RNA-protein interactions, affecting ribosomal, proteasomal, and translation factors.
Conclusions:
- This study provides the first comprehensive definition of the Leishmania RNA interactome.
- Uncovered the significant role of non-poly(A)-RNA-binding proteins and specific protein domains in Leishmania biology.
- Revealed downstream effects of Hsp90 inhibition on RNA-protein interactions, impacting protein synthesis and degradation pathways.
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