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In dieser Arbeit wurde die physiologische Funktion der Klasse I Methyltransferase Rrp8 bei der Ribosomen-Biogenese der Hefe Saccharomyces cerevisiae untersucht. Ziel war es, die Bedeutung des Proteins für die rRNA-Prozessierungsschritte besser zu verstehen und das Substratmolekül zu identifizieren, das durch die katalytische Aktivität von Rrp8p modifiziert wird.
In einer rrp8-ΔC Mutante, bei der die für die C-terminale Methyltransferase-Domäne codierende Sequenz deletiert vorlag, konnte eine leichte Mengenreduktion der 40S Untereinheit gefunden werden, was für eine Beteiligung von Rrp8p an der Biogenese der kleinen Untereinheit sprach. Unter Anwendung eines artifiziellen Tetrazyklin-Aptamer-Systems, das die Regulation der Expression eines spezifischen Gens erlaubt, wurde eine bereits vorher bekannte synthetische Interaktion mit der essentiellen 90SKomponente Nep1p bestätigt. Mit Hilfe dieses Expressionssystems konnte auch für eine reduzierte Expression von Nop14p, einem Interaktionspartner des Nep1-Proteins, eine synthetisch kranke Beziehung mit rrp8-ΔC festgestellt werden. Zusammen mit der Untersuchung des Sedimentationsverhaltens eines markierten Rrp8-Proteins und bekannten Daten aus der Literatur wiesen die genetischen Analysen darauf hin, dass Rrp8p neben dem Einfluss auf späte Reifungsschritte des 90S prä-Ribosoms auch für die frühen Reifungsschritte der 60S Untereinheit wichtig ist. Weitere Interaktionen mit Faktoren, die an der Translation beteiligt sind (TIF4631, DOM34) und die Messung der Translationsaktivität zeigten, dass der Ausfall von Rrp8p nicht nur die Biogenese verzögert, sondern gleichfalls die Funktionsfähigkeit des Ribosoms beeinflusst.
Die in dieser Arbeit durchgeführte phänotypische Analyse einer rrp8-ΔC tc-GAR1 Doppelmutante unterstützte die Vermutung, dass Rrp8p auch frühe Reifungsschritte der 60S Untereinheit beeinflusst. Mit einem in vitro Experiment konnte die Bindung von SAM an Rrp8p gezeigt werden und RP-HPLC Analysen der 25S rRNA verdeutlichten, dass Rrp8p neben dem Einfluss auf die Prozessierungsstelle A2 für die m1A645 Modifikation in Helix 25.1 verantwortlich ist. Die phänotypische Untersuchung einer von P. Kötter und S. Lamberth angefertigten rRNA Mutante (A645U) zeigte, dass die Sequenzveränderung innerhalb der Helix 25.1 der 25S rRNA, die zugleich zum Verlust der Modifikation führt, eine deutliche Auswirkung auf das Zellwachstum und auf das Polysomenprofil hat. Ähnliche Polysomenprofile wurden in den Mutanten rrp8-G209R und rrp8-G209A beobachtet, die ein punktmutiertes Rrp8-Protein exprimieren. Eine reduzierte SAM-Bindungsaktivität des mutierten Proteins führte ebenfalls zu einer reduzierten Menge an m1A645 modifizierter 25S rRNA. Eine im Unterschied zur rrp8-ΔC Mutante auftretende Reduktion der 60S Untereinheit in den Punktmutanten spricht für einen bisher noch unbekannten Einfluss von Rrp8p auf die Biogenese der 60S Untereinheit.
In Zusammenarbeit mit S. Sharma durchgeführte 2D-DIGE Experimente und quantitative Messungen von Transkriptmengen zeigten, dass im Vergleich zu einem Wildtyp-Stamm in einer rrp8-ΔC Mutante einige glykolytische Enzyme in geringerem Maße exprimiert werden, was in Zusammenhang mit einer in höheren Eukaryoten bekannten nukleolären Stressantwort gebracht werden kann. Dies verdeutlicht die komplexe Wechselwirkung zwischen der Ribosomenfunktion und dem Energiemetabolismus.
The sponge genus Latrunculia is a prolific source of discorhabdin type pyrroloiminoquinone alkaloids. In the continuation of our research interest into this genus, we studied the Antarctic deep-sea sponge Latrunculia biformis that showed potent in vitro anticancer activity. A targeted isolation process guided by bioactivity and molecular networking-based metabolomics yielded three known discorhabdins, (−)-discorhabdin L (1), (+)-discorhabdin A (2), (+)-discorhabdin Q (3), and three new discorhabdin analogs (−)-2-bromo-discorhabdin D (4), (−)-1-acetyl-discorhabdin L (5), and (+)-1-octacosatrienoyl-discorhabdin L (6) from the MeOH-soluble portion of the organic extract. The chemical structures of 1–6 were elucidated by extensive NMR, HR-ESIMS, FT-IR, [α]D, and ECD (Electronic Circular Dichroism) spectroscopy analyses. Compounds 1, 5, and 6 showed promising anticancer activity with IC50 values of 0.94, 2.71, and 34.0 µM, respectively. Compounds 1–6 and the enantiomer of 1 ((+)-discorhabdin L, 1e) were docked to the active sites of two anticancer targets, topoisomerase I-II and indoleamine 2,3-dioxygenase (IDO1), to reveal, for the first time, the binding potential of discorhabdins to these proteins. Compounds 5 and 6 are the first discorhabdin analogs with an ester function at C-1 and 6 is the first discorhabdin bearing a long-chain fatty acid at this position. This study confirms Latrunculia sponges to be excellent sources of chemically diverse discorhabdin alkaloids.
Ribosomal RNA undergoes various modifications to optimize ribosomal structure and expand the topological potential of RNA. The most common nucleotide modifications in ribosomal RNA (rRNA) are pseudouridylations and 2'-O methylations (Nm), performed by H/ACA box snoRNAs and C/D box snoRNAs, respectively. Furthermore, rRNAs of both ribosomal subunits also contain various base modifications, which are catalysed by specific enzymes. These modifications cluster in highly conserved areas of the ribosome. Although most enzymes catalysing 18S rRNA base modifications have been identified, little is known about the 25S rRNA base modifications. The m(1)A modification at position 645 in Helix 25.1 is highly conserved in eukaryotes. Helix formation in this region of the 25S rRNA might be a prerequisite for a correct topological framework for 5.8S rRNA to interact with 25S rRNA. Surprisingly, we have identified ribosomal RNA processing protein 8 (Rrp8), a nucleolar Rossman-fold like methyltransferase, to carry out the m(1)A base modification at position 645, although Rrp8 was previously shown to be involved in A2 cleavage and 40S biogenesis. In addition, we were able to identify specific point mutations in Rrp8, which show that a reduced S-adenosyl-methionine binding influences the quality of the 60S subunit. This highlights the dual functionality of Rrp8 in the biogenesis of both subunits.
Ribosome heterogeneity is of increasing biological significance and several examples have been described for multicellular and single cells organisms. In here we show for the first time a variation in ribose methylation within the 18S rRNA of Saccharomyces cerevisiae. Using RNA-cleaving DNAzymes, we could specifically demonstrate that a significant amount of S. cerevisiae ribosomes are not methylated at 2′-O-ribose of A100 residue in the 18S rRNA. Furthermore, using LC-UV-MS/MS of a respective 18S rRNA fragment, we could not only corroborate the partial methylation at A100, but could also quantify the methylated versus non-methylated A100 residue. Here, we exhibit that only 68% of A100 in the 18S rRNA of S.cerevisiae are methylated at 2′-O ribose sugar. Polysomes also contain a similar heterogeneity for methylated Am100, which shows that 40S ribosome subunits with and without Am100 participate in translation. Introduction of a multicopy plasmid containing the corresponding methylation guide snoRNA gene SNR51 led to an increased A100 methylation, suggesting the cellular snR51 level to limit the extent of this modification. Partial rRNA modification demonstrates a new level of ribosome heterogeneity in eukaryotic cells that might have substantial impact on regulation and fine-tuning of the translation process.
The entire chemical modification repertoire of yeast ribosomal RNAs and the enzymes responsible for it have recently been identified. Nonetheless, in most cases the precise roles played by these chemical modifications in ribosome structure, function and regulation remain totally unclear. Previously, we demonstrated that yeast Rrp8 methylates m1A645 of 25S rRNA in yeast. Here, using mung bean nuclease protection assays in combination with quantitative RP-HPLC and primer extension, we report that 25S/28S rRNA of S. pombe, C. albicans and humans also contain a single m1A methylation in the helix 25.1. We characterized nucleomethylin (NML) as a human homolog of yeast Rrp8 and demonstrate that NML catalyzes the m1A1322 methylation of 28S rRNA in humans. Our in vivo structural probing of 25S rRNA, using both DMS and SHAPE, revealed that the loss of the Rrp8-catalyzed m1A modification alters the conformation of domain I of yeast 25S rRNA causing translation initiation defects detectable as halfmers formation, likely because of incompetent loading of 60S on the 43S-preinitiation complex. Quantitative proteomic analysis of the yeast Δrrp8 mutant strain using 2D-DIGE, revealed that loss of m1A645 impacts production of specific set of proteins involved in carbohydrate metabolism, translation and ribosome synthesis. In mouse, NML has been characterized as a metabolic disease-associated gene linked to obesity. Our findings in yeast also point to a role of Rrp8 in primary metabolism. In conclusion, the m1A modification is crucial for maintaining an optimal 60S conformation, which in turn is important for regulating the production of key metabolic enzymes.
The entire chemical modification repertoire of yeast ribosomal RNAs and the enzymes responsible for it have recently been identified. Nonetheless, in most cases the precise roles played by these chemical modifications in ribosome structure, function and regulation remain totally unclear. Previously, we demonstrated that yeast Rrp8 methylates m1A645 of 25S rRNA in yeast. Here, using mung bean nuclease protection assays in combination with quantitative RP-HPLC and primer extension, we report that 25S/28S rRNA of S. pombe, C. albicans and humans also contain a single m1A methylation in the helix 25.1. We characterized nucleomethylin (NML) as a human homolog of yeast Rrp8 and demonstrate that NML catalyzes the m1A1322 methylation of 28S rRNA in humans. Our in vivo structural probing of 25S rRNA, using both DMS and SHAPE, revealed that the loss of the Rrp8-catalyzed m1A modification alters the conformation of domain I of yeast 25S rRNA causing translation initiation defects detectable as halfmers formation, likely because of incompetent loading of 60S on the 43S-preinitiation complex. Quantitative proteomic analysis of the yeast Δrrp8 mutant strain using 2D-DIGE, revealed that loss of m1A645 impacts production of specific set of proteins involved in carbohydrate metabolism, translation and ribosome synthesis. In mouse, NML has been characterized as a metabolic disease-associated gene linked to obesity. Our findings in yeast also point to a role of Rrp8 in primary metabolism. In conclusion, the m1A modification is crucial for maintaining an optimal 60S conformation, which in turn is important for regulating the production of key metabolic enzymes.