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The Gram-negative rod-shaped bacterium Pseudomonas aeruginosa is not only a major cause of nosocomial infections but also serves as a model species of bacterial RNA biology. While its transcriptome architecture and posttranscriptional regulation through the RNA-binding proteins Hfq, RsmA, and RsmN have been studied in detail, global information about stable RNA-protein complexes in this human pathogen is currently lacking. Here, we implement gradient profiling by sequencing (Grad-seq) in exponentially growing P. aeruginosa cells to comprehensively predict RNA and protein complexes, based on glycerol gradient sedimentation profiles of >73% of all transcripts and ∼40% of all proteins. As to benchmarking, our global profiles readily reported complexes of stable RNAs of P. aeruginosa, including 6S RNA with RNA polymerase and associated product RNAs (pRNAs). We observe specific clusters of noncoding RNAs, which correlate with Hfq and RsmA/N, and provide a first hint that P. aeruginosa expresses a ProQ-like FinO domain-containing RNA-binding protein. To understand how biological stress may perturb cellular RNA/protein complexes, we performed Grad-seq after infection by the bacteriophage ΦKZ. This model phage, which has a well-defined transcription profile during host takeover, displayed efficient translational utilization of phage mRNAs and tRNAs, as evident from their increased cosedimentation with ribosomal subunits. Additionally, Grad-seq experimentally determines previously overlooked phage-encoded noncoding RNAs. Taken together, the Pseudomonas protein and RNA complex data provided here will pave the way to a better understanding of RNA-protein interactions during viral predation of the bacterial cell.
IMPORTANCE Stable complexes by cellular proteins and RNA molecules lie at the heart of gene regulation and physiology in any bacterium of interest. It is therefore crucial to globally determine these complexes in order to identify and characterize new molecular players and regulation mechanisms. Pseudomonads harbor some of the largest genomes known in bacteria, encoding ∼5,500 different proteins. Here, we provide a first glimpse on which proteins and cellular transcripts form stable complexes in the human pathogen Pseudomonas aeruginosa. We additionally performed this analysis with bacteria subjected to the important and frequently encountered biological stress of a bacteriophage infection. We identified several molecules with established roles in a variety of cellular pathways, which were affected by the phage and can now be explored for their role during phage infection. Most importantly, we observed strong colocalization of phage transcripts and host ribosomes, indicating the existence of specialized translation mechanisms during phage infection. All data are publicly available in an interactive and easy to use browser.
Accumulated common variants in the broader fragile X gene family modulate autistic phenotypes
(2015)
Fragile X syndrome (FXS) is mostly caused by a CGG triplet expansion in the fragile X mental retardation 1 gene (FMR1). Up to 60% of affected males fulfill criteria for autism spectrum disorder (ASD), making FXS the most frequent monogenetic cause of syndromic ASD. It is unknown, however, whether normal variants (independent of mutations) in the fragile X gene family (FMR1, FXR1, FXR2) and in FMR2 modulate autistic features. Here, we report an accumulation model of 8 SNPs in these genes, associated with autistic traits in a discovery sample of male patients with schizophrenia (N = 692) and three independent replicate samples: patients with schizophrenia (N = 626), patients with other psychiatric diagnoses (N = 111) and a general population sample (N = 2005). For first mechanistic insight, we contrasted microRNA expression in peripheral blood mononuclear cells of selected extreme group subjects with high-versus low-risk constellation regarding the accumulation model. Thereby, the brain-expressed miR-181 species emerged as potential "umbrella regulator", with several seed matches across the fragile X gene family and FMR2. To conclude, normal variation in these genes contributes to the continuum of autistic phenotypes.
Altering gene expression by aminocoumarins: the role of DNA supercoiling in Staphylococcus aureus
(2014)
BACKGROUND:
It has been shown previously that aminocoumarin antibiotics such as novobiocin lead to immediate downregulation of recA expression and thereby inhibit the SOS response, mutation frequency and recombination capacity in Staphylococcus aureus. Aminocoumarins function by inhibiting the ATPase activity of DNA gyrase subunit B with a severe impact on DNA supercoiling.
RESULTS:
Here, we have analysed the global impact of the DNA relaxing agent novobiocin on gene expression in S. aureus. Using a novobiocin-resistant mutant, it became evident that the change in recA expression is due to gyrase inhibition. Microarray analysis and northern blot hybridisation revealed that the expression levels of a distinct set of genes were increased (e.g., recF-gyrB-gyrA, the rib operon and the ure operon) or decreased (e.g., arlRS, recA, lukA, hlgC and fnbA) by novobiocin. The two-component ArlRS system was previously found to decrease the level of supercoiling in S. aureus. Thus, downregulation of arlRS might partially compensate for the relaxing effect of novobiocin. Global analysis and gene mapping of supercoiling-sensitive genes did not provide any indication that they are clustered in the genome. Promoter fusion assays confirmed that the responsiveness of a given gene is intrinsic to the promoter region but independent of the chromosomal location.
CONCLUSIONS:
The results indicate that the molecular properties of a given promoter, rather than the chromosomal topology, dictate the responsiveness to changes in supercoiling in the pathogen Staphylococcus aureus.
Most protein-encoding genes in Eukaryotes are separated into alternating coding and non-coding sequences (exons and introns). Following the transcription of the DNA into pre-messenger RNA (pre-mRNA) in the nucleus, a macromolecular complex termed spliceosome removes the introns and joins the exons to generate mature mRNA that is exported to the cytoplasm. There, it can be interpreted by ribosomes to generate proteins. The spliceosome consists of five small nuclear ribonucleic acids (snRNAs) and more than 150 proteins. Integral components of this complex are RNA-protein particles (RNPs) composed of one or two snRNAs, seven common (Sm) and a various number of snRNP-specific proteins. The Sm proteins form a ring-structure around a conserved site of the snRNA called Sm site. In vitro, Sm proteins (B/B', D1, D2, D3, E, F, G) and snRNA readily assemble to form snRNPs. In the context of the cell, however, two macromolecular trans-acting factors, the PRMT5 (protein arginine methyltransferases type 5) and the SMN (survival motor neuron) complex, are needed to enable this process. Initially, the Sm proteins in the form of heterooligomers D1/D2, D3/B and F/E/G are sequestered by the type II methyltransferase PRMT5. pICln, a component of the PRMT5 complex, readily interacts with Sm proteins to form two distinct complexes. Whereas the first one comprises pICln and D3/B the second one forms a ring consisting of pICln, D1/D2 and F/E/G (6S). It has been found that pICln prevents the premature interaction of snRNAs with the Sm proteins in these complexes and thus functions as an assembly chaperone imposing a kinetic trap upon the further assembly of snRNPs. PRMT5 catalyzes the symmetrical dimethylation of arginine residues in B/B', D1 and D3 increasing their affinity towards the SMN complex. Finally, the SMN complex interacts with the pICln-Sm protein complexes, expels pICln and mediates snRNP assembly in an ATP-dependent reaction. So far, only little is known about the action of PRMT5 in the early phase of snRNP assembly and especially how the 6S complex is formed. Studies of this have so far been hampered by the unavailability of soluble and biologically active PRMT5 enzyme. The composition of the SMN complex and possible functions of individual subunits have been elucidated or hypothesized in recent years. Still, the exact mechanism of the entire machinery forming snRNPs is poorly understood. In vivo, reduced production of functional SMN protein results in the neurodegenerative disease spinal muscular atrophy (SMA). How specific SMN mutations that have been found in SMA patients cause the disease remains elusive, yet, are likely to interfere with either SMN complex stability or snRNP assembly. The aim of this work was to establish an in vitro system to recapitulate the cytoplasmic assembly of snRNPs. This was enabled by the recombinant production of all PRMT5 and SMN complex components as well as Sm proteins in a combination of bacterial and insect cell expression systems. Co-expression of human PRMT5 and its direct interaction partner WD45 (WD-repeat domain 45) in Sf21 (Spodoptera frugiperda 21) insect cells resulted for the first time in soluble and biologically active enzyme. Recombinant PRMT5/WD45 formed complexes with Sm protein heterooligomers as well as pICln-Sm protein complexes but not with F/E/G alone. Also, the enzyme exhibited a type II methyltransferase activity catalyzing the mono- (MMA) and symmetrical dimethylation (sDMA) of Sm proteins B, D1 and D3. Two experimental setups were devised to quantitatively analyze the overall methylation of substrates as well as to identify the type and relative abundance of specific methylation types. Methylation of Sm proteins followed Michaelis-Menten kinetics. Complex reconstitutions and competition of the methylation reaction indicate that 6S is formed in a step-wise manner on the PRMT5 complex. The analysis of the methylation type could be applied to deduce a model of sequential MMA and sDMA formation. It was found that large Sm protein substrate concentrations favored monomethylation. Following a distributive mechanism this leads to the conclusion that PRMT5 most likely confers partial methylation of several different substrate proteins instead of processing a single substrate iteratively until it is completely dimethylated. Finally, the human SMN complex was reconstituted from recombinant sources and was shown to be active in snRNP formation. The introduction of a modified SMN protein carrying a mutation (E134K) present in spinal muscular atrophy (SMA) proved that mutated complexes can be generated in vitro and that these might be applied to elucidate the molecular etiology of this devastating disease.
Die Initiation der DNA-Replikation ist in Eukaryonten ein hochkonservierter Prozess. Zuerst bindet der „origin recognition complex“ (ORC) an Replikationsstartpunkte chromosomaler DNA und stellt das Startsignal für die Assemblierung des präreplikativen Komplexes (pre-RC) dar. Anschließend assoziieren die Initiationsfaktoren CDC6 und CDT1 mit dem ORC. Durch die Rekrutierung des MCM-Komplexes wird der pre-RC schließlich vervollständigt. Die Aktivität der CDC7/DBF4-Kinase und die Anlagerung von CDC45 lizensiert den Origin für die DNA-Replikation. Ein Ziel dieser Arbeit war, den vollständigen murinen ORC rekombinant darzustellen. Um den gesamten Komplex durch Copräzipitation zu isolieren, wurden ORC1, 3, 4, 5 und 6 als Wildtyp-Proteine und ORC2 mit einer N-terminalen Poly-His-Domäne mit Hilfe von Baculoviren koexprimiert. Nach der Aufreinigung konnten, mit Ausnahme von ORC3, alle ORC-Untereinheiten in den Elutionsfraktionen immundetektiert werden. Eine Gelfiltration der Fraktionen ließ auf die Isolierung eines 450 kD großen Komplexes schließen, der mindestens fünf der sechs ORC-Untereinheiten enthielt. Dies zeigt, dass der murine ORC als Holokomplex rekombinant isoliert werden kann. In einem weiteren Teil dieser Arbeit sollte die Rolle des MCM-Komplexes bei der Termination der DNA-Replikation am 3'-Ende muriner rDNA-Transkriptionseinheiten untersucht werden. Durch polare Replikationsgabelbarrieren im 3'-Bereich der ribosomalen Gene wird über die Kontrahelikaseaktivität von TTF-I die Bewegungsrichtung der Replikation auf die Richtung der Transkription limitiert. In dieser Arbeit sollte festgestellt werden, ob dies auch bei der murinen MCM4/6/7-Helikase der Fall ist. Um MCM4/6/7-Hexamere zu isolieren, wurden die Untereinheiten MCM4 und 7 in Wildtyp-Form und MCM6 mit einem N-terminal fusionierten HA-Tag mittels Baculoviren koexprimiert. Zur Durchführung der Kontrahelikasestudien musste die Helikaseaktivität der isolierten Komplexe ermittelt werden. Bereits mit kurzen partiell doppelsträngigen M13-Substraten (17 nt) zeigte sich eine geringere Entwindungsfähigkeit als in der Literatur beschrieben. Bei weiteren Helikasestudien wurden DNA-Substrate (30 nt) mit einem 5'-Überhang sowie SSB bzw. RPA eingesetzt. Zwar konnte so eine Steigerung der Helikaseaktivität von MCM4/6/7 verzeichnet werden, jedoch fand diese nicht in ausreichendem Maße statt. Zudem war das entwundene Oligonukleotid einem Abbau unterworfen, dessen Ursache nicht aufgeklärt werden konnte. Aufgrund der zu geringen Helikaseaktivität im Hinblick auf die TTF-I-Kontrahelikasestudien wurden diese Arbeiten eingestellt. Ein weiterer Aspekt dieser Arbeit war der Transport von MCM-Proteinen in den Zellkern. Der MCM-Komplex ist in fast allen Organismen konstitutiv im Zellkern lokalisiert. Die Überexpression einzelner exogener MCM-Proteine zeigte allerdings, dass nur MCM2 und 3 mit Hilfe ihrer ihrer NLS-Motive in den Kern transportiert werden, während dies bei MCM4 bis 7 nicht erfolgt. Two-Hybrid-Studien unserer Arbeitsgruppe ließen auf paarweise Wechselwirkungen der MCM4 bis 7-Untereinheiten mit MCM2 bzw. MCM3 schließen. Deshalb wurden EGFP-MCM-Proteine zusammen mit Wildtyp-MCM-Proteinen in Mauszellen koexprimiert. Dabei zeigte sich, dass MCM2 die Proteine MCM4, 6 und 7 in den Kern transportiert, während MCM3 nur MCM5 in den Zellkern einschleust. Weitere Interaktionen zwischen MCM6 und 4 sowie zwischen MCM6 und 7 konnten bei MCM4/6/7-Aufreinigungen beobachtet werden. Zuletzt wurde noch die Lokalisation von CDT1 in der OBR-Region des murinen rDNA-Cistrons untersucht. Bislang wurde nur in S. cerevisiae eine sequenzspezifische ORC-Bindung an ACS-Bereiche identifiziert. In unserer Arbeitsgruppe konnte im murinen rDNA-Cluster stromaufwärts des Transkriptionsstartpunktes ein Origin charakterisiert und die Bindungstelle verschiedener Initiatorproteine um die Position -2500 eingegrenzt werden. Die Assoziation von CDT1 mit derselben Region würde die Assemblierung eines pre-RC in dem untersuchten Bereich zusätzlich bestätigen. Zur Umsetzung von ChIP-Studien wurden CDT1-Antikörper hergestellt. Um die Assemblierung von CDT1 mit dem Origin in Abhängigkeit des Zellzyklus zu untersuchen, wurden FM3A-Mauszellen in früher G1-, später G1-, G1/S-, S- und in der G2/M-Phase arretiert. Die Auswertung der ChIP-Analysen, die den zu analysierenden Bereich von -2837 bis -1820 umspannten, zeigte, dass CDT1 ausschließlich während der G1-Phase mit dem Chromatin assoziiert ist. Dies ist konsistent mit der Aktivität von CDT1 während des Zellzyklus in Säugern. Der höchste Anteil an DNA-gebundenem CDT1 konnte in dem Bereich -2519 bis -2152 festgestellt werden. Eine Sequenzanalyse des OBR der murinen rDNA lieferte keine Homologie zu anderen bekannten Origins. Jedoch wurden diverse DNA-Strukturelemente, wie z.B. HSS, DUEs oder CpG-Inseln, sowie verschiedene Protein-Bindungsstellen gefunden, die potentiellen Einfluss auf die Festlegung des murinen OBR haben könnten.
Peroxisomes are ubiquitous organelles with essential functions in numerous cellular processes such as lipid metabolism, detoxification of reactive oxygen species and signaling. Knowledge of the peroxisomal proteome including multi-localized proteins and, most importantly, changes of its composition induced by altering cellular conditions or impaired peroxisome biogenesis and function is of paramount importance for a holistic view on peroxisomes and their diverse functions in a cellular context. In this chapter, we provide a spatial proteomics protocol specifically tailored to the analysis of the peroxisomal proteome of baker's yeast that enables the definition of the peroxisomal proteome under distinct conditions and to monitor dynamic changes of the proteome including the relocation of individual proteins to a different cellular compartment. The protocol comprises subcellular fractionation by differential centrifugation followed by Nycodenz density gradient centrifugation of a crude peroxisomal fraction, quantitative mass spectrometric measurements of subcellular and density gradient fractions and advanced computational data analysis, resulting in the establishment of organellar maps on a global scale.
Bacteria thrive and survive in many different environments, and as a result, they have developed robust mechanisms to adapt rapidly to alterations in their surroundings. The protection against osmotic forces is provided by mechanosensitive channels: their primary function is to maintain the integrity of the cell upon a hypoosmotic shock. The mechanosensitive channel of small conductance (MscS) is not only the smallest common structural unit of a diverse family that allows for a tailored response in osmoregulation; it is also the most intensively studied homologue. Mechanosensitive channels directly sense elevated membrane tension levels generated by increased pressure within the cell and open transiently. Escherichia coli has six paralogues that differ in their gating properties and the number of additional transmembrane (TM) helices. These TM helices, termed sensor paddles, are essential for sensing, as they directly contact the surrounding membrane; however, the role of the additional TM helices is still unclear. Furthermore, lipids occupy hydrophobic pockets far away from the membrane plane. A recent gating model for MscS states that increased membrane tension triggers the expulsion of lipids out of those pockets, modulating different conformational states of MscS. This model focuses on bound lipids, but it is still unclear to what extent the direct interaction with the membrane influences sensing and how relevant it is for the larger paralogues.
In the herein described work, structural studies on two larger paralogues, the medium-sized channel YnaI and the large channel YbiO were realised using electron cryomicroscopy (cryo-EM). Lipids were identified in YnaI in the pockets in a similar position and orientation as in MscS, suggesting a conserved sensing mechanism. Moreover, the copolymer diisobutylene/maleic acid (DIBMA) allowed the extraction of artificially activated YnaI from plasma membranes, leading to an open-like form of this channel. This novel conformation indicated that the pore helices bend at a GGxGG motif during gating, which is unique among the Escherichia coli paralogues, concomitant with a structural reorganisation of the sensor paddles. Thus, despite a high similarity of their closed states, the gating mechanisms of MscS and YnaI are surprisingly different. Furthermore, the comparison of MscS, YnaI, and YbiO accentuates variations and similarities between the differently sized family members, implying fine-tuning of channel properties in the pore regions and the cytosolic lateral entry sides into the channel. Structural analyses of MscS reconstituted into different systems showed the advantages and disadvantages of certain polymers and detergents. The novel DIBMA copolymer and the more conventional amphiphilic polymers, so-called Amphipols, perturb contacting transmembrane helices or lead to their denaturation. Due to this observation, the obtained structures of YnaI must also be cautiously considered. The structures obtained in detergents resulted in unaffected channels; however, the applicability of detergents for MscS-like channels is limited by the increased required sample concentration.
The role of lipids for gating MscS in the absence of a membrane was examined by deliberately removing coordinated lipid molecules from MscS using different amounts and kinds of detergent. The effects on the channel were inspected by cryo-EM. These experiments showed that closed MscS adopts the open conformation when it is enough delipidated by incubation with the detergent n-dodecyl-β-D-maltoside, and adding lipids to the open channel reverses this process. The results agree with the state-of-the-art model that the amount of lipid molecules in the pockets and grooves is responsible for the conformational state of MscS. Furthermore, incubation with the detergent lauryl maltose neopentyl glycol, which has stabilising and delipidating characteristics, resulted in a high-resolution structure of open MscS exhibiting an intricate network of ligands. Based on this structure, an updated gating model is proposed, which states that upon opening, lipids from the pockets migrate into the cytosolic membrane leaflet, while lipids from the periplasmic leaflet enter the grooves that arise between the sensor paddles.
HRAS belongs to the RAS genes superfamily. RAS genes are important players in several human tumors and the single-nucleotide polymorphism rs12628 has been shown to contribute to the risk of bladder, colon, gastrointestinal, oral, and thyroid carcinoma. We hypothesized that this SNP may affect the risk of cutaneous melanoma as well. HRAS gene contains a polymorphic region (rs112587690), a repeated hexanucleotide -GGGCCT- located in intron 1. Three alleles of this region, P1, P2, and P3, have been identified that contain two, three, and four repeats of the hexanucleotide, respectively. We investigated the clinical impact of these polymorphisms in a case–control study. A total of 141 melanoma patients and 118 healthy donors from the North America Caucasian population were screened for rs12628 and rs112587690 polymorphisms. Genotypes were assessed by capillary sequencing or fragment analysis, respectively, and rs12628 CC and rs112587690 P1P1 genotypes significantly associated with increased melanoma risk (OR = 3.83, p = 0.003; OR = 11.3, p = 0.033, respectively), while rs112587690 P1P3 frequency resulted significantly higher in the control group (OR = 0.5, p = 0.017). These results suggest that rs12628 C homozygosis may be considered a potential risk factor for melanoma development in the North American population possibly through the linkage to rs112587690.
Bei Daidzein und Bisphenol A handelt es sich um zwei Vertreter einer Klasse von Stoffen, die als „Umwelthormone“ (engl. endocrine disrupter) bezeichnet werden. Aus der Gruppe der Phytoöstrogene wurde Daidzein als wichtiger Vertreter, der in hohen Konzentrationen in vielen Nutzpflanzen und Nahrungsmitteln vorkommt, ausgewählt. Sojaprodukte, die den größten Beitrag einer menschlichen Exposition gegen Daidzein liefern, werden in zunehmendem Maße auch in westlichen Ländern konsumiert. Bisphenol A wurde als Vertreter der Xenoöstrogene gewählt, da es - was Weltjahresproduktion und Verwendung angeht - die wohl wichtigste Substanz dieser Gruppe darstellt. Im ersten Teil der Arbeit wurde die Biotransformation und Toxikokinetik der beiden Verbindungen nach oraler Gabe in der Ratte aufgeklärt. Dabei konnte gezeigt werden, daß die orale Bioverfügbarkeit beider Substanzen in der Ratte sehr gering war. Maximal zehn Prozent der jeweils applizierten Dosis konnten im Urin der Tiere wiedergefunden werden. Als Hauptmetabolit wurden sowohl von Daidzein als auch von Bisphenol A das jeweilige Glucuronid-Konjugat gebildet. Bei Daidzein überwog in der männlichen Ratte zusätzlich das Sulfat-Konjugat. Der Anteil an freier, d.h. unkonjugierter Verbindung betrug im Urin der Tiere zwischen 1 und 3 Prozent der Dosis. Außer den Phase II-Konjugaten, die aufgrund ihrer mangelnden östrogenen Wirksamkeit zu einer Detoxifizierung der beiden Verbindungen führte, konnten nach Gabe von Bisphenol A in der Ratte keine weiteren Metabolite identifiziert werden. Nach Exposition mit Daidzein konnten in den Faeces der Tiere in geringem Umfang die beiden reduktiven Metabolite Equol und O-DMA gefunden werden. Diese wurden wahrscheinlich im Magen-Darm-Trakt durch die Bakterien der Darmflora gebildet. Sowohl Daidzein als auch Bisphenol A wurden bei der Ratte nur unvollständig aus dem Magen-Darm-Trakt resorbiert; der Großteil der gegebenen Dosis wurde als unveränderte Substanz in den Faeces wiedergefunden. Bei Bisphenol A wurde die Ausscheidung zudem durch einen ausgeprägten enterohepatischen Kreislauf verzögert. Im zweiten Teil der Arbeit wurden zunächst empfindliche GC/MS- und HPLC-Methoden zur Quantifizierung der Verbindungen in humanen Plasma- und Urinproben entwickelt. Danach wurden freiwillige Probanden oral mit jeweils 5 mg Daidzein bzw. d16-Bisphenol A exponiert, um Daten zur Biotransformation und Toxikokinetik der beiden Substanzen im Mensch zu erhalten. Wegen des deutlich meßbaren Hintergrundes an Bisphenol A, das in allen Kontrollproben nachweisbar war, wurde für die Humanstudie die deuterierte Verbindung gegeben, für die kein störender Hintergrund meßbar war. Die Bioverfügbarkeit der Gesamt-Substanz (freie Verbindung + Konjugate) im Menschen war in beiden Fällen deutlich höher als in der Ratte. Von Daidzein wurden 40 Prozent (Ratte 10 Prozent), von Bisphenol A > 95 Prozent (Ratte 13 Prozent) der applizierten Dosis im Urin der Probanden wiedergefunden. Dabei zeigte sich ein sehr effizienter Phase II-Metabolismus; weniger als 1 Prozent der Glucuronid-Konjugatkonzentrationen wurden als unveränderte Substanz gefunden. Das Glucuronid stellte in beiden Fällen den einzigen nachweisbaren Metaboliten dar. Die Elimination von Daidzein und Bisphenol A verlief in den beiden Studien sehr schnell nach einer Kinetik erster Ordnung. Im Gegensatz zu der Ratte konnten auch bei Bisphenol A keine Auffälligkeiten in den Ausscheidungskurven beobachtet werden, Hinweise auf einen enterohepatischen Kreislauf im Menschen wurden nicht gefunden. Im Falle von Bisphenol A wurde fast die komplette applizierte Dosis (> 95 Prozent) in Form des Glucuronides im Urin wiedergefunden. Anhand der erhobenen Daten wurde anschließend eine Beurteilung des Risikos für den Menschen abgegeben.
The Epstein-Barr Virus (EBV) -encoded EBNA2 protein, which is essential for the in vitro transformation of B-lymphocytes, interferes with cellular processes by binding to proteins via conserved sequence motifs. Its Arginine-Glycine (RG) repeat element contains either symmetrically or asymmetrically di-methylated arginine residues (SDMA and ADMA, respectively). EBNA2 binds via its SDMA-modified RG-repeat to the survival motor neurons protein (SMN) and via the ADMA-RG-repeat to the NP9 protein of the human endogenous retrovirus K (HERV-K (HML-2) Type 1). The hypothesis of this work was that the methylated RG-repeat mimics an epitope shared with cellular proteins that is used for interaction with target structures. With monoclonal antibodies against the modified RG-repeat, we indeed identified cellular homologues that apparently have the same surface structure as methylated EBNA2. With the SDMA-specific antibodies, we precipitated the Sm protein D3 (SmD3) which, like EBNA2, binds via its SDMA-modified RG-repeat to SMN. With the ADMA-specific antibodies, we precipitated the heterogeneous ribonucleoprotein K (hnRNP K). Specific binding of the ADMA-antibody to hnRNP K was demonstrated using E. coli expressed/ADMA-methylated hnRNP K. In addition, we show that EBNA2 and hnRNP K form a complex in EBV-infected B-cells. Finally, hnRNP K, when co-expressed with EBNA2, strongly enhances viral latent membrane protein 2A (LMP2A) expression by an unknown mechanism as we did not detect a direct association of hnRNP K with DNA-bound EBNA2 in gel shift experiments. Our data support the notion that the methylated surface of EBNA2 mimics the surface structure of cellular proteins to interfere with or co-opt their functional properties.