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Probing High-density Functional Protein Microarrays to Detect Protein-protein Interactions
Published on: August 2, 2015
Multiplexed proteomics mapping of yeast RNA polymerase II and III allows near-complete sequence coverage and reveals
Shabaz Mohammed1, Kristina Lorenzen, Robert Kerkhoven
1Biomolecular Mass Spectrometry and Proteomics Group, Bijvoet Center for Biomolecular Research and Utrecht Institute for Chemistry, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands.
Abstract:
The multisubunit RNA polymerases (Pols) II and III synthesize mainly eukaryotic mRNAs and tRNAs, respectively. Pol II and Pol III are protein complexes consisting of 12 and 17 subunits. Here we analyzed both yeast Pol II and Pol III by multiplexed mass spectrometric analysis using various proteases and both collision induced and electron transfer dissociation. The cumulative data obtained from using the various proteases (trypsin, chymotrypsin, Glu-C and Lys-C) and the two peptide fragmentation approaches allowed us to map nearly the complete sequences of all constituents of both Pol II and III. Notably, chymotrypsin behaved equally well as and in certain circumstances better than trypsin in the context of protein coverage. Although the available high resolution structures have exposed extensive mechanistic insights into transcription, the role of post-translational modification in these processes has been addressed to a lesser extent. In our analysis of Pol II and III we detected 19 phosphorylation sites, of which 12 have not been previously reported. Identified phosphosites were mapped on the Pol II structure which provided indications that they might play a role in regulating the conformation of the clamp region and, as a consequence, interaction of Pol II with nucleic acids. The described multiplexed proteomics approach is generic and reveals that it is possible to map a protein complex to near completion while applying less than 5 mug (approximately 10 pmol) of total starting material.
Insights
Researchers mapped nearly complete sequences of yeast RNA polymerases II and III using mass spectrometry. This study identified 19 phosphorylation sites, revealing potential roles in regulating nucleic acid interactions.
Area of Science:
- Molecular Biology
- Proteomics
- Structural Biology
Background:
- RNA polymerases (Pols) II and III are essential multisubunit complexes transcribing eukaryotic mRNAs and tRNAs.
- High-resolution structures offer mechanistic insights, but post-translational modifications remain less understood.
Purpose of the Study:
- To comprehensively map the protein constituents of yeast Pol II and Pol III.
- To identify and characterize post-translational modifications, specifically phosphorylation, on these polymerases.
Main Methods:
- Multiplexed mass spectrometric analysis of yeast Pol II and Pol III.
- Utilized various proteases (trypsin, chymotrypsin, Glu-C, Lys-C) and dissociation methods (CID, ETD).
- Mapped identified phosphosites onto the Pol II structure.
Main Results:
- Achieved near-complete sequence mapping for all subunits of yeast Pol II and Pol III.
- Identified 19 phosphorylation sites on Pol II and Pol III, with 12 being novel discoveries.
- Chymotrypsin demonstrated comparable or superior performance to trypsin for protein coverage.
Conclusions:
- The developed multiplexed proteomics approach is efficient, requiring minimal starting material (<5 µg).
- Newly identified phosphosites on Pol II may regulate clamp region conformation and nucleic acid interactions.
- This study provides a foundation for further investigation into the functional roles of post-translational modifications in transcription.
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