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Hemm, L.

Publications and source records attributed to Hemm, L..

3 recordsLinked to original sources

RAPDOR: Using Jensen-Shannon Distance for the computational analysis of complex proteomics datasets

The computational analysis of large proteomics datasets, such as those from gradient profiling or spatially resolved proteomics, is often as crucial as the experimental design. We present RAPDOR, a tool for intuitive analyzing and visualizing such datasets, based on the Jensen-Shannon distance and subsequent analysis of similarities between replicates, applied to three datasets. First, we examined the in-gradient distribution profiles of protein complexes with or without RNase treatment (GradR) to identify the set of RNA-binding proteins (RBPs) in the cyanobacterium Synechocystis sp. PCC 6803. RBPs play pivotal regulatory and structural roles; although numerous RBPs have been identified, the complete set is unknown for any species. RAPDOR identified 80 potential RBPs, including ribosomal proteins, likely RNA-modifying enzymes, and several proteins not previously associated with RNA binding. High-ranking putative RBPs, such as the universal stress protein Sll1388, or the translation inhibitor LrtA/RaiA, were predicted by RAPDOR but not the TriPepSVM algorithm, indicating uncharacterized RBP domains. These data are available online at https://synecho-rapdor.biologie.uni-freiburg.de, providing a comprehensive resource for RNase-sensitive protein complexes in cyanobacteria. We then show by reanalyzing existing datasets, that RAPDOR is effective in examining the intracellular redistribution of proteins under stress conditions. RAPDOR is a generic, non-parametric tool for the intuitive and versatile analysis of highly complex data sets such as the study of protein distributions using fractionation protocols.

bioinformatics↗

The RRM domain-containing protein Rbp3 interacts with ribosomes and the 3' ends of mRNAs encoding photosynthesis proteins

RNA recognition motif (RRM) domain proteins are crucial RNA-binding proteins (RBPs) across all domains of life. In cyanobacteria, single RRM domain proteins are involved in mRNA targeting to the thylakoid membrane and acclimation to certain stress conditions, but many details of their physiological functions and molecular targets have remained unknown. The model cyanobacterium Synechocystis sp. PCC 6803 has a family of three genes encoding the RRM domain-containing proteins Rbp1, Rbp2 and Rbp3. Here, we verified the RNA-binding activity of Rbp3 in vivo and show that cells of a {Delta}rbp3 deletion strain had a lower PSI:PSII ratio and decreased pigment content and were significantly smaller than wild-type cells. To identify the set of interacting molecules, co-immunoprecipitation experiments were performed with a strain expressing a C-terminally FLAG-tagged Rbp3. Mass spectrometry of the elution fraction suggested physical proximity between Rbp3, ribosomes, and a very small number of other proteins. The most highly enriched transcript in the co-eluting RNA fraction was the psaAB mRNA. This was corroborated by fluorescent in situ hybridization (FISH) analyses showing decreased psaA mRNA signals in {Delta}rbp3, and colocalization with Rbp3-GFP in the wild type. Other mRNAs co-enriched with Rbp3 encode thylakoid, plasma membrane and carboxysome proteins. Binding assays using Bio-layer Interferometry validated the Rbp3-psaAB mRNA interaction, indicating a preference for folded RNA segments near or overlapping the respective stop codons. Significance statementThe mechanisms by which proteins are produced at specific sites and inserted into the intricate membrane systems of photosynthetic cyanobacteria are only partially understood. While RRM domain proteins are well-studied RNA-binding proteins in eukaryotes, their functions in bacteria remain underexplored. This study reveals that the RRM domain protein Rbp3 in the cyanobacterium Synechocystis sp. PCC 6803 binds mRNAs encoding photosynthetic proteins, plasma membrane proteins and carboxysome proteins and localizes near ribosomes. The bound RNA segments are typically near the ends of coding regions, or in 5' untranslated regions. These findings suggest that Rbp3 is involved in targeting mRNAs to various intracellular locations by interacting with structural elements within these mRNA molecules.

microbiology↗

Characterization of YlxR/Ssr1238, a conserved RNA binding protein in a model cyanobacterium

Throughout the tree of life RNA-binding proteins play important roles, but they are poorly characterized in cyanobacteria. Structural prediction suggests an RNA-binding interface for the protein YlxR/Ssr1238 in the cyanobacterium Synechocystis 6803. Two pairs of cysteine residues are arranged as possibly coordinating an Fe-S cluster and appear widely conserved in the homologous proteins of other cyanobacteria. Overexpression of Ssr1238 for 24 h led to higher levels of RNase P RNA, tRNAs, and stress-related mRNAs. Co-immunoprecipitation of proteins followed by MS analysis and sequencing of UV crosslinked, co-immunoprecipitated RNA samples identified potential interaction partners of Ssr1238. The most enriched transcript was RNase P RNA, and RnpA, the protein component of RNase P, was among the most highly enriched proteins. A second highly enriched transcript derived from gene ssl3177, which encodes a central enzyme in cell wall remodeling during cell division. The data also showed a strong connection to the RNA maturation and modification system indicated by co-precipitation of RNA modifying enzymes, riboendonuclease E and enolase. Surprisingly, cyanophycin synthetase and urease were highly enriched as well. In conclusion, Ssr1238 specifically binds to two different transcripts and participates in the coordination of RNA maturation, translation, cell division, and aspects of nitrogen metabolism. Our results are consistent with recent findings that the B. subtilis YlxR protein functions as an RNase P modulator (RnpM), but suggest additional functionalities and extend its proposed role to the phylum cyanobacteria.

microbiology↗