316 resultados para ORF


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From September 2005 to December 2006, in order to define the prevalence of Helicobacter pullorum in broiler chickens, laying hens and turkey, a total of 365 caecum contents of animals reared in 76 different farms were collected at the slaughterhouse. A caecum content of a ostrich was also sampled. In addition, with the aim of investigating the occurrence of H. pullorum in humans, 151 faeces were collected at the Sant’Orsola-Malpighi University Hospital of Bologna from patients suffering of gastroenteritis. A modified Steele–McDermott membrane filter method was used. Gram-negative curved rod bacteria were preliminary identified as H. pullorum by a PCR assay based on 16S rRNA, then subjected to a RFLP-PCR assay to distinguish between H. pullorum and H. canadensis. One isolate from each farm was randomly selected for phenotypic characterization by biochemical methods and 1D SDSPAGE analysis of whole cell proteins profiles. Minimum Inhibitory Concentration (MIC) for seven different antibiotics were also determined by agar dilution method. Moreover, to examine the intraspecific genomic variability, two strains isolated from 17 different farms were submitted to genotyping by Pulse-Field Gel Electrophoresis (PFGE). In order to assess the molecular basis of fluorquinolone resistance in H. pullorum, gyrA of H. pullorum CIP 104787T was sequenced and nucleotide sequences of the Quinolone Resistance Determining Region (QRDR) of a total of 18 poultry isolates, with different MIC values for ciprofloxacin and nalidixic acid, were compared. According to the PCR and PCR-RFLP results, 306 out of 366 animals examined were positive for H. pullorum (83,6%) and 96,1% of farms resulted infected. All positive samples showed a high number of colonies (>50) phenotipically consistent with H. pullorum on the first isolation media, which suggests that this microrganism, when present, colonizes the poultry caecum at an elevate load. No human sample resulted positive for H. pullorum. The 1D SDS-PAGE whole protein profile analysis showed high similarity among the 74 isolates tested and with the type strain H. pullorum CIP 104787T. Regarding the MIC values, a monomodal distribution was found for ampicillin, chloramphenicol, gentamicin and nalidixic acid, whereas a bimodal trend was noticed for erythromycin, ciprofloxacin and tetracycline (indicating an acquired resistance for these antibiotics). Applying the breakpoints indicated by the CSLI, we may assume that all the H. pullorum tested are sensitive only to gentamicin. The intraspecific genomic variability observed in this study confirm that this species don’t have a clonal population structure, as motioned by other autors. The 2490 bp gyrA gene of H. pullorum CIP104787T with an Open Reading Frame (ORF) encoding a polypeptide of 829 amino acids was for the first time sequenced and characterized. All ciprofloxacin resistant poultry isolates showed ACA®ATA (Thr®Ile) substitution at codon 84 of gyrA corresponding to codons of gyrA 86, 87 and 83 of the Campylobacter jejuni, H. pylori and Escherichia coli, respectively. This substitution was functionally confirmed to be associated with the ciprofloxacin resistant phenotype of poultry isolates. This is the first report of isolation of H. pullorum in turkey and in ostrich, indicating that poultry species are the reservoir of this potential zoonotic microorganisms. In order to understand the potential role as food-borne human pathogen of H. pullorum, further studies must be carried on.

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The Poxviruses are a family of double stranded DNA (dsDNA) viruses that cause disease in many species, both vertebrate and invertebrate. Their genomes range in size from 135 to 365 kbp and show conservation in both organization and content. In particular, the central genomic regions of the chordopoxvirus subfamily (those capable of infecting vertebrates) contain 88 genes which are present in all the virus species characterised to date and which mostly occur in the same order and orientation. In contrast, however, the terminal regions of the genomes frequently contain genes that are species or genera-specific and that are not essential for the growth of the virus in vitro but instead often encode factors with important roles in vivo including modulation of the host immune response to infection and determination of the host range of the virus. The Parapoxviruses (PPV), of which Orf virus is the prototypic species, represent a genus within the chordopoxvirus subfamily of Poxviridae and are characterised by their ability to infect ruminants and humans. The genus currently contains four recognised species of virus, bovine papular stomatitis virus (BPSV) and pseudocowpox virus (PCPV) both of which infect cattle, orf virus (OV) that infects sheep and goats, and parapoxvirus of red deer in New Zealand (PVNZ). The ORFV genome has been fully sequenced, as has that of BPSV, and is ~138 kb in length encoding ~132 genes. The vast majority of these genes allow the virus to replicate in the cytoplasm of the infected host cell and therefore encode proteins involved in replication, transcription and metabolism of nucleic acids. These genes are well conserved between all known genera of poxviruses. There is however another class of genes, located at either end of the linear dsDNA genome, that encode proteins which are non-essential for replication and generally dictate host range and virulence of the virus. The non-essential genes are often the most variable within and between species of virus and therefore are potentially useful for diagnostic purposes. Given their role in subverting the host-immune response to infection they are also targets for novel therapeutics. The function of only a relatively small number of these proteins has been elucidated and there are several genes whose function still remains obscure principally because there is little similarity between them and proteins of known function in current sequence databases. It is thought that by selectively removing some of the virulence genes, or at least neutralising the proteins in some way, current vaccines could be improved. The evolution of poxviruses has been proposed to be an adaptive process involving frequent events of gene gain and loss, such that the virus co-evolves with its specific host. Gene capture or horizontal gene transfer from the host to the virus is considered an important source of new viral genes including those likely to be involved in host range and those enabling the virus to interfere with the host immune response to infection. Given the low rate of nucleotide substitution, recombination can be seen as an essential evolutionary driving force although it is likely underestimated. Recombination in poxviruses is intimately linked to DNA replication with both viral and cellular proteins participate in this recombination-dependent replication. It has been shown, in other poxvirus genera, that recombination between isolates and perhaps even between species does occur, thereby providing another mechanism for the acquisition of new genes and for the rapid evolution of viruses. Such events may result in viruses that have a selective advantage over others, for example in re-infections (a characteristic of the PPV), or in viruses that are able to jump the species barrier and infect new hosts. Sequence data related to viral strains isolated from goats suggest that possible recombination events may have occurred between OV and PCPV (Ueda et al. 2003). The recombination events are frequent during poxvirus replication and comparative genomic analysis of several poxvirus species has revealed that recombinations occur frequently on the right terminal region. Intraspecific recombination can occur between strains of the same PPV species, but also interspecific recombination can happen depending on enough sequence similarity to enable recombination between distinct PPV species. The most important pre-requisite for a successful recombination is the coinfection of the individual host by different virus strains or species. Consequently, the following factors affecting the distribution of different viruses to shared target cells need to be considered: dose of inoculated virus, time interval between inoculation of the first and the second virus, distance between the marker mutations, genetic homology. At present there are no available data on the replication dynamics of PPV in permissive and non permissive hosts and reguarding co-infetions there are no information on the interference mechanisms occurring during the simultaneous replication of viruses of different species. This work has been carried out to set up permissive substrates allowing the replication of different PPV species, in particular keratinocytes monolayers and organotypic skin cultures. Furthermore a method to isolate and expand ovine skin stem cells was has been set up to indeep further aspects of viral cellular tropism during natural infection. The study produced important data to elucidate the replication dynamics of OV and PCPV virus in vitro as well as the mechanisms of interference that can arise during co-infection with different viral species. Moreover, the analysis carried on the genomic right terminal region of PCPV 1303/05 contributed to a better knowledge of the viral genes involved in host interaction and pathogenesis as well as to locate recombination breakpoints and genetic homologies between PPV species. Taken together these data filled several crucial gaps for the study of interspecific recombinations of PPVs which are thought to be important for a better understanding of the viral evolution and to improve the biosafety of antiviral therapy and PPV-based vectors.

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I policlorobifenili (PCB) sono inquinanti tossici e fortemente recalcitranti che contaminano suoli e sedimenti di acqua dolce e marini. Le tecnologie attualmente impiegate per la loro rimozione (dragaggio e trattamento chimoco-fisico o conferimento in discarica) sono molto costose, poco efficaci o ad alto impatto ambientale. L’individuazione di strategie alternative, di natura biologica, consentirebbe lo sviluppo di un processo alternativo più sostenibile. Nel processo di declorurazione riduttiva i congeneri di PCB a più alto grado di clorurazione, che sono i più tossici, recalcitranti e maggiormente tendenti al bioaccumulo, vengono utilizzati da alcuni microrganismi anaerobici come accettori finali di elettroni nella catena respiratoria e bioconvertiti in congeneri a minor grado di clorurazione, meno pericolosi, che possono essere mineralizzati da parte di batteri aerobi. La declorurazione riduttiva dei PCB è stata spesso studiata in colture anaerobiche di arricchimento in terreno minerale ottenute a partire da sedimenti di acqua dolce; questi studi hanno permesso di dimostrare che batteri del phylum dei Chloroflexi e appartenenti al genere Dehalococcoides o filogeneticamente facenti parte del gruppo dei Dehalococcoides-like sono i decloruranti. Sono tuttavia scarse le informazioni riguardanti l'occorrenza della declorurazione dei PCB in ambienti marini, nei quali l'alta salinità e concentrazione di solfati influenzano diversamente l'evoluzione delle popolazioni microbiche. In sedimenti contaminati della laguna di Venezia è stata osservata declorurazione sia dei PCB preesistenti che di congeneri esogeni; questi studi hanno permesso l'ottenimento di colture di arricchimento fortemente attive nei confronti di 5 congeneri di PCB coplanari. In questa tesi, a partire dalle colture capaci di declorurare i PCB coplanari, sono stati allestiti nuovi passaggi di arricchimento su Aroclor®1254, una miscela di PCB più complessa e che meglio rappresenta la contaminazione ambientale. Le colture sono state allestite come microcosmi anaerobici in fase slurry, preparati risospendendo il sedimento nell'acqua superficiale, ricreando in tal modo in laboratorio le stesse condizioni biogeochimiche presenti in situ; gli slurry sterili sono stati inoculati per avviare le colture. Per favorire la crescita dei microrganismi decloruranti e stimolare così la decloruraazione dei PCB sono stati aggiunti inibitori selettivi di metanogeni (Bromoetansulfonato o BES) e solfato-riduttori (molibdato), sono state fornite fonti di carbonio ed energia (eD), quali acidi grassi a corta catena e idrogeno, utilizzate di batteri decloruranti noti, e per semplificare la comunità microbica sono stati aggiunti antibiotici cui batteri decloruranti del genere Dehalococcoides sono resistenti. Con questo approccio sono stati allestiti passaggi di arricchimento successivi e le popolazioni microbiche delle colture sono state caratterizzate con analisi molecolari di fingerprinting (DGGE). Fin dal primo passaggio di arricchimento nei microcosmi non ammendati ha avuto luogo un'estesa declorurazione dell'Aroclor®1254; nei successivi passaggi si è notato un incremento della velocità del processo e la scomparsa della fase di latenza, mentre la stessa stereoselettività è stata mantenuta a riprova dell’arricchimento degli stessi microrganismi decloruranti. Le velocità di declorurazione ottenute sono molto alte se confrontate con quelle osservate in colture anaerobiche addizionate della stessa miscela descritte in letteratura. L'aggiunta di BES o molibdato ha bloccato la declorurazione dei PCB ma in presenza di BES è stata riscontrata attività dealogenante nei confronti di questa molecola. La supplementazione di fonti di energia e di carbonio ha stimolato la metanogenesi e i processi fermentativi ma non ha avuto effetti sulla declorurazione. Ampicillina e vancomicina hanno incrementato la velocità di declorurazione quando aggiunte singolarmente, insieme o in combinazione con eD. E' stato però anche dimostrato che la declorurazione dei PCB è indipendente sia dalla metanogenesi che dalla solfato-riduzione. Queste attività respiratorie hanno avuto velocità ed estensioni diverse in presenza della medesima attività declorurante; in particolare la metanogenesi è stata rilevata solo in dipendenza dall’aggiunta di eD alle colture e la solfato-riduzione è stata inibita dall’ampicillina in microcosmi nei quali un’estesa declorurazione dei PCB è stata osservata. La caratterizzazione delle popolazioni microbiche, condotte mediante analisi molecolari di fingerprinting (DGGE) hanno permesso di descrivere le popolazioni batteriche delle diverse colture come complesse comunità microbiche e di rilevare in tutte le colture decloruranti la presenza di una banda che l’analisi filogenetica ha ascritto al batterio m-1, un noto batterio declorurante in grado di dealogenare un congenere di PCB in colture di arricchimento ottenute da sedimenti marini appartenente al gruppo dei Dehalococcoides-like. Per verificare se la crescita di questo microrganismo sia legata alla presenza dei PCB, l'ultimo passaggio di arricchimento ha previsto l’allestimento di microcosmi addizionati di Aroclor®1254 e altri analoghi privi di PCB. Il batterio m-1 è stato rilevato in tutti i microcosmi addizionati di PCB ma non è mai stato rilevato in quelli in cui i PCB non erano presenti; la presenza di nessun altro batterio né alcun archebatterio è subordinata all’aggiunta dei PCB. E in questo modo stato dimostrato che la presenza di m-1 è dipendente dai PCB e si ritiene quindi che m-1 sia il declorurante in grado di crescere utilizzando i PCB come accettori di elettroni nella catena respiratoria anche in condizioni biogeochimiche tipiche degli habitat marini. In tutte le colture dell'ultimo passaggio di arricchimento è stata anche condotta una reazione di PCR mirata alla rilevazione di geni per dealogenasi riduttive, l’enzima chiave coinvolto nei processi di dealogenazione. E’ stato ottenuto un amplicone di lughezza analoga a quelle di tutte le dealogenasi note in tutte le colture decloruranti ma un tale amplificato non è mai stato ottenuto da colture non addizionate di PCB. La dealogenasi ha lo stesso comportamento di m-1, essendo stata trovata come questo sempre e solo in presenza di PCB e di declorurazione riduttiva. La sequenza di questa dealogenasi è diversa da tutte quelle note sia in termini di sequenza nucleotidica che aminoacidica, pur presentando due ORF con le stesse caratteristiche e domini presenti nelle dealogenasi note. Poiché la presenza della dealogenasi rilevata nelle colture dipende esclusivamente dall’aggiunta di PCB e dall’osservazione della declorurazione riduttiva e considerato che gran parte delle differenze genetiche è concentrata nella parte di sequenza che si pensa determini la specificità di substrato, si ritiene che la dealogenasi identificata sia specifica per i PCB. La ricerca è stata condotta in microcosmi che hanno ricreato fedelmente le condizioni biogeochimiche presenti in situ e ha quindi permesso di rendere conto del reale potenziale declorurante della microflora indigena dei sedimenti della laguna di Venezia. Le analisi molecolari condotte hanno permesso di identificare per la prima volta un batterio responsabile della declorurazione dei PCB in sedimenti marini (il batterio m-1) e una nuova dealogenasi specifica per PCB. L'identificazione del microrganismo declorurante permette di aprire la strada allo sviluppo di tecnologie di bioremediation mirata e il gene della dealogenasi potrà essere utilizzato come marker molecolare per determinare il reale potenziale di declorurazione di miscele complesse di PCB in sedimenti marini.

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A livello globale una delle problematiche più urgenti della sanità pubblica umana e veterinaria è rappresentata dal controllo delle infezioni virali. L’emergenza di nuove malattie, la veloce diffusione di patologie finora confinate ad alcune aree geografiche, lo sviluppo di resistenza dei patogeni alle terapie utilizzate e la mancanza di nuove molecole attive, sono gli aspetti che influiscono più negativamente livello socio-economico in tutto il mondo. Misure per limitare la diffusione delle infezioni virali prevedono strategie per prevenire e controllare le infezioni in soggetti a rischio . Lo scopo di questa tesi è stato quello di indagare il possibile utilizzo di prototipi virali utilizzati come modello di virus umani per valutare l’efficacia di due diversi metodi di controllo delle malattie virali: la rimozione mediante filtrazione di substrati liquidi e gli antivirali di sintesi e di origine naturale. Per quanto riguarda la rimozione di agenti virali da substrati liquidi, questa è considerata come requisito essenziale per garantire la sicurezza microbiologica non solo di acqua ad uso alimentare , ma anche dei prodotti utilizzati a scopo farmaceutico e medico. Le Autorità competenti quali WHO ed EMEA hanno redatto delle linee guida molto restrittive su qualità e sicurezza microbiologica dei prodotti biologici per garantire la rimozione di agenti virali che possono essere trasmessi con prodotti utilizzati a scopo terapeutico. Nell'industria biomedicale e farmaceutica c'è l'esigenza di una tecnologia che permetta la rimozione dei virus velocemente, in grande quantità, a costi contenuti, senza alterare le caratteristiche del prodotto finale . La collaborazione con l’azienda GVS (Zola Predosa, Italia) ha avuto come obiettivo lo studio di una tecnologia di filtrazione che permette la rimozione dei virus tramite membrane innovative e/o tessuti-non-tessuti funzionalizzati che sfruttano l’attrazione elettrostatica per ritenere ed asportare i virus contenuti in matrici liquide. Anche gli antivirali possono essere considerati validi mezzi per il controllo delle malattie infettive degli animali e nell’uomo quando la vaccinazione non è realizzabile come ad esempio in caso di scoppio improvviso di un focolaio o di un attacco bioterroristico. La scoperta degli antivirali è relativamente recente ed il loro utilizzo è attualmente limitato alla patologia umana, ma è in costante aumento l’interesse per questo gruppo di farmaci. Negli ultimi decenni si è evidenziata una crescente necessità di mettere a punto farmaci ad azione antivirale in grado di curare malattie ad alta letalità con elevato impatto socio-economico, per le quali non esiste ancora un’efficace profilassi vaccinale. Un interesse sempre maggiore viene rivolto agli animali e alle loro patologie spontanee, come modello di studio di analoghe malattie dell’uomo. L’utilizzo di farmaci ad azione antivirale in medicina veterinaria potrebbe contribuire a ridurre l’impatto economico delle malattie limitando, nel contempo, la disseminazione dei patogeni nell’ambiente e, di conseguenza, il rischio sanitario per altri animali e per l’uomo in caso di zoonosi. Le piante sono sempre state utilizzate dall’industria farmaceutica per l’isolamento dei composti attivi e circa il 40% dei farmaci moderni contengono principi d’origine naturale. Alla luce delle recenti emergenze sanitarie, i fitofarmaci sono stati considerati come una valida per migliorare la salute degli animali e la qualità dei prodotti da essi derivati. L’obiettivo del nostro studio è stato indagare l’attività antivirale in vitro di estratti naturali e di molecole di sintesi nei confronti di virus a RNA usando come prototipo il Canine Distemper Virus, modello di studio per virus a RNA a polarità negativa, filogeneticamente correlato al virus del morbillo umano. La scelta di questo virus è dipesa dal fatto che rispetto ai virus a DNA e ai retrovirus attualmente l’offerta di farmaci capaci di contrastare le infezioni da virus a RNA è molto limitata e legata a molecole datate con alti livelli di tossicità. Tra le infezioni emergenti causate da virus a RNA sono sicuramente da menzionare quelle provocate da arbovirus. Le encefaliti virali da arbovirus rappresentano una emergenza a livello globale ed attualmente non esiste una terapia specifica. Una delle molecole più promettenti in vitro per la terapia delle infezioni da arbovirus è la ribavirina (RBV) che, con il suo meccanismo d’azione pleiotropico, si presta ad essere ulteriormente studiata in vivo per la sua attività antivirale nei confronti delle infezioni da arbovirus. Uno dei fattori limitanti l’utilizzo in vivo di questa molecola è l’incapacità della molecola di oltrepassare la barriera emato-encefalica. Nel nostro studio abbiamo messo a punto una formulazione per la somministrazione endonasale di RBV e ne abbiamo indagato la diffusione dalla cavità nasale all’encefalo attraverso l’identificazione e quantificazione della molecola antivirale nei diversi comparti cerebrali . Infine è stato condotto un esperimento in vivo per valutare l’efficacia di un composto a base di semi di Neem, di cui sono già note le proprietà antimicrobiche, nei confronti dell’infezione da orf virus, una zoonosi a diffusione mondiale, che ha un elevato impatto economico in aree ad alta densità ovi-caprina e può provocare lesioni invalidanti anche nell’uomo.

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ABSTRACTDie vorliegende Arbeit befasste sich mit der Reinigung,heterologen Expression, Charakterisierung, molekularenAnalyse, Mutation und Kristallisation des EnzymsVinorin-Synthase. Das Enzym spielt eine wichtige Rolle inder Ajmalin-Biosynthese, da es in einerAcetyl-CoA-abhängigen Reaktion die Umwandlung desSarpagan-Alkaloids 16-epi-Vellosimin zu Vinorin unterBildung des Ajmalan-Grundgerüstes katalysiert. Nach der Reinigung der Vinorin-Synthase ausHybrid-Zellkulturen von Rauvolfia serpentina/Rhazya strictamit den fünf chromatographischen TrennmethodenAnionenaustauschchromatographie an SOURCE 30Q, HydrophobeInteraktionen Chromatographie an SOURCE 15PHE,Chromatographie an MacroPrep Ceramic Hydroxyapatit,Anionenaustauschchromatographie an Mono Q undGrößenausschlußchromatographie an Superdex 75 konnte dieVinorin-Synthase aus 2 kg Zellkulturgewebe 991fachangereichert werden.Das nach der Reinigung angefertigte SDS-Gel ermöglichte eineklare Zuordnung der Protein-Bande als Vinorin-Synthase.Der Verdau der Enzymbande mit der Endoproteinase LysC unddie darauffolgende Sequenzierung der Spaltpeptide führte zuvier Peptidsequenzen. Der Datenbankvergleich (SwissProt)zeigte keinerlei Homologien zu Sequenzen bekannterPflanzenenzyme. Mit degenerierten Primern, abgeleitet voneinem der erhaltenen Peptidfragmente und einer konserviertenRegion bekannter Acetyltransferasen gelang es, ein erstescDNA-Fragment der Vinorin-Synthase zu amplifizieren. Mit derMethode der RACE-PCR wurde die Nukleoidsequenzvervollständigt, was zu einem cDNA-Vollängenklon mit einerGröße von 1263 bp führte, der für ein Protein mit 421Aminosäuren (46 kDa) codiert.Das Vinorin-Synthase-Gen wurde in den pQE2-Expressionsvektorligiert, der für einen N-terminalen 6-fachen His-tagcodiert. Anschließend wurde sie erstmals erfolgreich in E.coli im mg-Maßstab exprimiert und bis zur Homogenitätgereinigt. Durch die erfolgreiche Überexpression konnte dieVinorin-Synthase eingehend charakterisiert werden. DerKM-Wert für das Substrat Gardneral wurde mit 20 µM, bzw.41.2 µM bestimmt und Vmax betrug 1 pkat, bzw. 1.71 pkat.Nach erfolgreicher Abspaltung des His-tags wurden diekinetischen Parameter erneut bestimmt (KM- Wert 7.5 µM, bzw.27.52 µM, Vmax 0.7 pkat, bzw. 1.21 pkat). Das Co-Substratzeigt einen KM- Wert von 60.5 µM (Vmax 0.6 pkat). DieVinorin-Synthase besitzt ein Temperatur-Optimum von 35 °Cund ein pH-Optimum bei 7.8.Homologievergleiche mit anderen Enzymen zeigten, dass dieVinorin-Synthase zu einer noch kleinen Familie von bisher 10Acetyltransferasen gehört. Alle Enzyme der Familie haben einHxxxD und ein DFGWG-Motiv zu 100 % konserviert. Basierendauf diesen Homologievergleichen und Inhibitorstudien wurden11 in dieser Proteinfamilie konservierte Aminosäuren gegenAlanin ausgetauscht, um so die Aminosäuren einer in derLiteratur postulierten katalytischen Triade(Ser/Cys-His-Asp) zu identifizieren.Die Mutation aller vorhandenen konservierten Serine undCysteine resultierte in keiner Mutante, die zumvollständigen Aktivitätsverlust des Enzyms führte. Nur dieMutationen H160A und D164A resultierten in einemvollständigen Aktivitätsverlust des Enzyms. Dieses Ergebniswiderlegt die Theorie einer katalytischen Triade und zeigte,dass die Aminosäuren H160A und D164A exklusiv an derkatalytischen Reaktion beteiligt sind.Zur Überprüfung dieser Ergebnisse und zur vollständigenAufklärung des Reaktionsmechanismus wurde dieVinorin-Synthase kristallisiert. Die bis jetzt erhaltenenKristalle (Kristallgröße in µm x: 150, y: 200, z: 200)gehören der Raumgruppe P212121 (orthorhombisch primitiv) anund beugen bis 3.3 Å. Da es bis jetzt keine Kristallstruktureines zur Vinorin-Synthase homologen Proteins gibt, konntedie Struktur noch nicht vollständig aufgeklärt werden. ZurLösung des Phasenproblems wird mit der Methode der multiplenanomalen Dispersion (MAD) jetzt versucht, die ersteKristallstruktur in dieser Enzymfamilie aufzuklären.

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Das Hepatitis C Virus (HCV) ist ein umhülltes Virus aus der Familie der Flaviviridae. Es besitzt ein Plusstrang-RNA Genom von ca. 9600 Nukleotiden Länge, das nur ein kodierendes Leseraster besitzt. Das Genom wird am 5’ und 3’ Ende von nicht-translatierten Sequenzen (NTRs) flankiert, welche für die Translation und vermutlich auch Replikation von Bedeutung sind. Die 5’ NTR besitzt eine interne Ribosomeneintrittsstelle (IRES), die eine cap-unabhängige Translation des ca. 3000 Aminosäure langen viralen Polyproteins erlaubt. Dieses wird ko- und posttranslational von zellulären und viralen Proteasen in 10 funktionelle Komponenten gespalten. Inwieweit die 5’ NTR auch für die Replikation der HCV RNA benötigt wird, war zu Beginn der Arbeit nicht bekannt. Die 3’ NTR besitzt eine dreigeteilte Struktur, bestehend aus einer variablen Region, dem polyU/UC-Bereich und der sogenannten X-Sequenz, eine hochkonservierte 98 Nukleotide lange Region, die vermutlich für die RNA-Replikation und möglicherweise auch für die Translation benötigt wird. Die genuae Rolle der 3’ NTR für diese beiden Prozesse war zu Beginn der Arbeit jedoch nicht bekannt. Ziel der Dissertation war deshalb eine detaillierte genetische Untersuchung der NTRs hinsichtlich ihrer Bedeutung für die RNA-Translation und -Replikation. In die Analyse mit einbezogen wurden auch RNA-Strukturen innerhalb der kodierenden Region, die zwischen verschiedenen HCV-Genotypen hoch konserviert sind und die mit verschiedenen computer-basierten Modellen vorhergesagt wurden. Zur Kartierung der für RNA-Replikation benötigten Minimallänge der 5’ NTR wurde eine Reihe von Chimären hergestellt, in denen unterschiedlich lange Bereiche der HCV 5’ NTR 3’ terminal mit der IRES des Poliovirus fusioniert wurden. Mit diesem Ansatz konnten wir zeigen, dass die ersten 120 Nukleotide der HCV 5’ NTR als Minimaldomäne für Replikation ausreichen. Weiterhin ergab sich eine klare Korrelation zwischen der Länge der HCV 5’ NTR und der Replikationseffizienz. Mit steigender Länge der 5’ NTR nahm auch die Replikationseffizienz zu, die dann maximal war, wenn das vollständige 5’ Element mit der Poliovirus-IRES fusioniert wurde. Die hier gefundene Kopplung von Translation und Replikation in der HCV 5’ NTR könnte auf einen Mechanismus zur Regulation beider Funktionen hindeuten. Es konnte allerdings noch nicht geklärt werden, welche Bereiche innerhalb der Grenzen des IRES-Elements genau für die RNA-Replikation benötigt werden. Untersuchungen im Bereich der 3’ NTR ergaben, dass die variable Region für die Replikation entbehrlich, die X-Sequenz jedoch essentiell ist. Der polyU/UC-Bereich musste eine Länge von mindestens 11-30 Uridinen besitzen, wobei maximale Replikation ab einer Länge von 30-50 Uridinen beobachtet wurde. Die Addition von heterologen Sequenzen an das 3’ Ende der HCV-RNA führte zu einer starken Reduktion der Replikation. In den hier durchgeführten Untersuchungen zeigte keines der Elemente in der 3’ NTR einen signifikanten Einfluss auf die Translation. Ein weiteres cis aktives RNA-Element wurde im 3’ kodierenden Bereich für das NS5B Protein beschrieben. Wir fanden, dass Veränderungen dieser Struktur durch stille Punktmutationen die Replikation hemmten, welche durch die Insertion einer intakten Version dieses RNA-Elements in die variable Region der 3’ NTR wieder hergestellt werden konnte. Dieser Versuchsansatz erlaubte die genaue Untersuchung der für die Replikation kritischen Strukturelemente. Dadurch konnte gezeigt werden, dass die Struktur und die Primärsequenz der Loopbereiche essentiell sind. Darüber hinaus wurde eine Sequenzkomplementarität zwischen dem Element in der NS5B-kodierenden Region und einem RNA-Bereich in der X-Sequenz der 3’ NTR gefunden, die eine sog. „kissing loop“ Interaktion eingehen kann. Mit Hilfe von gezielten Mutationen konnten wir zeigen, dass diese RNA:RNA Interaktion zumindest transient stattfindet und für die Replikation des HCV essentiell ist.

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Beet necrotic yellow vein virus (BNYVV), the leading infectious agent that affects sugar beet, is included within viruses transmitted through the soil from plasmodiophorid as Polymyxa betae. BNYVV is the causal agent of Rhizomania, which induces abnormal rootlet proliferation and is widespread in the sugar beet growing areas in Europe, Asia and America; for review see (Peltier et al., 2008). In this latter continent, Beet soil-borne mosaic virus (BSBMV) has been identified (Lee et al., 2001) and belongs to the benyvirus genus together with BNYVV, both vectored by P. betae. BSBMV is widely distributed only in the United States and it has not been reported yet in others countries. It was first identified in Texas as a sugar beet virus morphologically similar but serologically distinct to BNYVV. Subsequent sequence analysis of BSBMV RNAs evidenced similar genomic organization to that of BNYVV but sufficient molecular differences to distinct BSBMV and BNYVV in two different species (Rush et al., 2003). Benyviruses field isolates usually consist of four RNA species but some BNYVV isolates contain a fifth RNA. RNAs -1 contains a single long ORF encoding polypeptide that shares amino acid homology with known viral RNA-dependent RNA polymerases (RdRp) and helicases. RNAs -2 contains six ORFs: capsid protein (CP), one readthrough protein, triple gene block proteins (TGB) that are required for cell-to-cell virus movement and the sixth 14 kDa ORF is a post-translation gene silencing suppressor. RNAs -3 is involved on disease symptoms and is essential for virus systemic movement. BSBMV RNA-3 can be trans-replicated, trans-encapsidated by the BNYVV helper strain (RNA-1 and -2) (Ratti et al., 2009). BNYVV RNA-4 encoded one 31 kDa protein and is essential for vector interactions and virus transmission by P. betae (Rahim et al., 2007). BNYVV RNA-5 encoded 26 kDa protein that improve virus infections and accumulation in the hosts. We are interest on BSBMV effect on Rhizomania studies using powerful tools as full-length infectious cDNA clones. B-type full-length infectious cDNA clones are available (Quillet et al., 1989) as well as A/P-type RNA-3, -4 and -5 from BNYVV (unpublished). A-type BNYVV full-length clones are also available, but RNA-1 cDNA clone still need to be modified. During the PhD program, we start production of BSBMV full-length cDNA clones and we investigate molecular interactions between plant and Benyviruses exploiting biological, epidemiological and molecular similarities/divergences between BSBMV and BNYVV. During my PhD researchrs we obtained full length infectious cDNA clones of BSBMV RNA-1 and -2 and we demonstrate that they transcripts are replicated and packaged in planta and able to substitute BNYVV RNA-1 or RNA-2 in a chimeric viral progeny (BSBMV RNA-1 + BNYVV RNA-2 or BNYVV RNA-1 + BSBMV RNA-2). During BSBMV full-length cDNA clones production, unexpected 1,730 nts long form of BSBMV RNA-4 has been detected from sugar beet roots grown on BSBMV infected soil. Sequence analysis of the new BSBMV RNA-4 form revealed high identity (~100%) with published version of BSBMV RNA-4 sequence (NC_003508) between nucleotides 1-608 and 1,138-1,730, however the new form shows 528 additionally nucleotides between positions 608-1,138 (FJ424610). Two putative ORFs has been identified, the first one (nucleotides 383 to 1,234), encode a protein with predicted mass of 32 kDa (p32) and the second one (nucleotides 885 to 1,244) express an expected product of 13 kDa (p13). As for BSBMV RNA-3 (Ratti et al., 2009), full-length BSBMV RNA-4 cDNA clone permitted to obtain infectious transcripts that BNYVV viral machinery (Stras12) is able to replicate and to encapsidate in planta. Moreover, we demonstrated that BSBMV RNA-4 can substitute BNYVV RNA-4 for an efficient transmission through the vector P. betae in Beta vulgaris plants, demonstrating a very high correlation between BNYVV and BSBMV. At the same time, using BNYVV helper strain, we studied BSBMV RNA-4’s protein expression in planta. We associated a local necrotic lesions phenotype to the p32 protein expression onto mechanically inoculated C. quinoa. Flag or GFP-tagged sequences of p32 and p13 have been expressed in viral context, using Rep3 replicons, based on BNYVV RNA-3. Western blot analyses of local lesions contents, using FLAG-specific antibody, revealed a high molecular weight protein, which suggest either a strong interaction of BSBMV RNA4’s protein with host protein(s) or post translational modifications. GFP-fusion sequences permitted the subcellular localization of BSBMV RNA4’s proteins. Moreover we demonstrated the absence of self-activation domains on p32 by yeast two hybrid system approaches. We also confirmed that p32 protein is essential for virus transmission by P. betae using BNYVV helper strain and BNYVV RNA-3 and we investigated its role by the use of different deleted forms of p32 protein. Serial mechanical inoculation of wild-type BSBMV on C. quinoa plants were performed every 7 days. Deleted form of BSBMV RNA-4 (1298 bp) appeared after 14 passages and its sequence analysis shows deletion of 433 nucleotides between positions 611 and 1044 of RNA-4 new form. We demonstrated that this deleted form can’t support transmission by P. betae using BNYVV helper strain and BNYVV RNA-3, moreover we confirmed our hypothesis that BSBMV RNA-4 described by Lee et al. (2001) is a deleted form. Interesting after 21 passages we identifed one chimeric form of BSBMV RNA-4 and BSBMV RNA-3 (1146 bp). Two putative ORFs has been identified on its sequence, the first one (nucleotides 383 to 562), encode a protein with predicted mass of 7 kDa (p7), corresponding to the N-terminal of p32 protein encoded by BSBMV RNA-4; the second one (nucleotides 562 to 789) express an expected product of 9 kDa (p9) corresponding to the C-terminal of p29 encoded by BSBMV RNA-3. Results obtained by our research in this topic opened new research lines that our laboratories will develop in a closely future. In particular BSBMV p32 and its mutated forms will be used to identify factors, as host or vector protein(s), involved in the virus transmission through P. betae. The new results could allow selection or production of sugar beet plants able to prevent virus transmission then able to reduce viral inoculum in the soil.

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During the last twenty years, Cydia pomonolla granulovirus (CpGV, Baculoviridae) has become the most important biological control agent for the codling moth (CM) in organic and integrated apple production. All registered products in Europe are based on the isolate CpGV-M, which was discovered 1964 in Mexico. A serious threat to future application of CpGV is the occurrence of CM field populations resistant to CpGV. Since 2003, populations with up to 10,000-fold reduced susceptibility were reported from orchards in Germany, France, Italy, Switzerland, Austria and the Netherlands. A putative alternative to CpGV-M are novel CpGV isolates which are able to overcome CM resistance. This thesis focuses on the identification and characterisation of resistance overcoming CpGV isolates and the analysis of their molecular difference to CpGV-M.rnSixteen CpGV isolates were tested against CM lab strains in bioassays. Hereby, five isolates were identified which were able to completely overcome resistance. The genomes of these isolates were compared to CpGV-M by restriction fragment length polymorphism (RFLP) analysis. To identify the molecular factor responsible for improved virulence of some CpGV isolates, major genomic differences were sequenced and analysed. A 0.7 kb insertion was found in CpGV-I01, -I12 and -E2, but not in other resistance overcoming isolates. Analysis of the insertions sequence revealed that it might be due to a transposition event, but not involved in overcoming resistance. rnFor unequivocal identification of CpGV isolates, a new method based on molecular analysis was established. Partial sequencing of the conserved polyhedrin/granulin (polh/gran), late expression factor-8 (lef-8) and late expression factor-9 (lef-9) genes revealed single nucleotide polymorphisms (SNPs). SNP analysis correlated with the grouping obtained by RFLP analysis. A phylogenetic classification due to different genome types A-E is proposed. Phylogenetic analysis suggested that CpGV-M was the phylogenetically youngest of the tested CpGV isolates.rnWhole genome sequencing of two resistance overcoming isolates CpGV-I12 (type D genome) and -S (type E genome) and CpGV-M (type A genome) was performed. Comparison of the three genomes revealed a high sequence identity. Several insertions and deletions ranging from 1-700 nucleotides (nt) were found. Comparison on open reading frame (ORF) level revealed that CpGV-I12 and -S shared only one protein alteration when compared to CpGV-M: a stretch of 24 nt present in ORF cp24 was not found in any of the resistance overcoming isolates. Cp24 codes for the early gene pe38. Combined with the results of phylogenetic analysis, it is proposed that these 24 nt are a recent insertion into the CpGV-M genome. The role of pe38 in overcoming resistance was investigated by knocking out pe38 of a CpGV-M based bacmid and swapping of CpGV-I12 pe38 of into the k.o. bacmid. When pe38 of CpGV-I12 was inserted into the k.o. bacmid, the infectivity could not be rescued, suggesting that the genomic portion of pe38 might play a role in its function.rnIt can be concluded that the recently observed CpGV resistance in CM is only related to type A genomes. RFLP and SNP analysis provide tools for identifying and characterising different CpGV isolates reliably, a pre-condition for a future registration of CpGV products based on novel CpGV isolates.rnrnrn

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Die Inhibition des programmierten Zelltods ist ein essentieller Faktor der viralen Replikationsfähigkeit. Das murine Cytomegalovirus kodiert deshalb für verschiedene Zelltod-inhibierende Gene, um dem programmierten Zelltod zu entgehen bis die Virusproduktion abgeschlossen ist. Da die Expression des viralen anti-apoptotischen Gens M36 infizierte Makrophagen vor der Apoptose schützt (Menard et al., 2003), wurde in der vorliegenden Arbeit unter Verwendung der Deletionsmutante mCMV-ΔM36 (ΔM36) der Einfluss von Apoptose auf das Priming Epitop-spezifischer CD8 T-Zellen untersucht.rnInteressanterweise waren die Frequenzen mCMV-spezifischer CD8 T-Zellen nach Infektion mit ΔM36 für alle getesteten Epitope sowohl im Haplotyp H-2d als auch im Haplotyp H-2b deutlich erhöht. Zusätzlich konnte mit Hilfe der mCMV-ORF-Library eine Verbreiterung des CD8 T-Zellepitop-Repertoire nach Infektion mit ΔM36 nachgewiesen werden, was neben der quantitativen auch eine qualitative Steigerung des CD8 T-Zell-Primings aufzeigt.rnIn der funktionellen Revertante ΔM36-FADDDN wird die anti-apoptotische Funktion durch eine dominant-negative Form des zellulären Adapterproteins FADD (FADDDN) substituiert (Cicin-Sain et al., 2008), die das Apoptose-Signaling verhindert. In der vorliegenden Arbeit konnte gezeigt werden, dass die Expression von FADDDN nicht nur den Apoptose-Phänotyp wieder revertiert, sondern auch die Verbesserung des CD8 T-Zell-Primings aufhebt. Diese Beobachtung belegt eindeutig, dass das verbesserte CD8 T-Zell-Priming auf einer verstärkten Apoptose-Induktion beruht.Bemerkenswerterweise konnte das verbesserte Priming auch nach Deletion des anti-nekroptotischen Gens M45 nachgewiesen werden. So konnte nach Infektion mit mCMV-M45-BamX (M45-BamX) (Brune et al., 2001) gezeigt werden, dass auch die Induktion der Nekroptose zu einem verbesserten CD8 T-Zell-Priming sowie zu einer Verbreiterung des CD8 T-Zellepitop-Repertoires führt.Nach Infektion von Cross-Priming-defizienten 3d-Mäusen (Tabeta et al., 2006) konnte eine Steigerung mCMV-spezifischer CD8 T-Zell-Frequenzen in Abwesenheit von M36 oder M45 nicht beobachtet werden. Dieser Befund lässt auf ein erhöhtes Cross-Priming von CD8 T-Zellen durch ΔM36 oder M45-BamX infolge einer verstärkten Induktion des programmierten Zelltods schließen.rnIn der vorliegenden Arbeit konnte erstmals gezeigt werden, dass die Inhibition des programmierten Zelltods durch die mCMV-Gene M36 und M45 das CD8 T-Zell-Priming limitiert. Somit fördern virale Zelltod-inhibierende Gene die virale Replikationsfähigkeit, indem sie die Virusproduktion per se in der individuellen Zelle steigern und zusätzlich die Immunkontrolle reduzieren, was wiederum eine verbesserte Dissemination in vivo ermöglicht.

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Complete genome sequences were determined for two distinct strains of slow bee paralysis virus (SBPV) of honeybees (Apis mellifera). The SBPV genome is approximately 9 5 kb long and contains a single ORF flanked by 5'- and 3'-UTRs and a naturally polyadenylated 3' tail, with a genome organization typical of members of the family Iflaviridae The two strains, labelled `Rothamsted' and 'Harpenden', are 83% identical at the nucleotide level (94% identical at the amino acid level), although this variation is distributed unevenly over the genome. The two strains were found to co-exist at different proportions in two independently propagated SBPV preparations The natural prevalence of SBPV for 847 colonies in 162 apiaries across five European countries was <2%, with positive samples found only in England and Switzerland, in colonies with variable degrees of Varroa infestation

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Increasing evidence suggest that the long "untranslated" region (UTR) between the matrix (M) and the fusion (F) proteins of morbilliviruses has a functional role. In canine distemper virus (CDV), the F 5' UTR was recently shown to code for a long F signal peptide (Fsp). Subsequently, it was reported that the M/F UTRs combined with the long Fsp were synergistically regulating the F mRNA and protein expression, thereby modulating virulence. Unique to CDV, a short putative open reading frame (ORF) has been identified within the wild-type CDV-M 3' UTR (termed M2). Here, we investigated whether M2 was expressed from the genome of the virulent and demyelinating A75/17-CDV strain. An expression plasmid encoding the M2 ORF tagged both at its N-terminal (HA) and C-terminal domains (RFP), was first constructed. Then, a recombinant virus with its putative M2 ORF replaced by HA-M2-RFP was successfully recovered from cDNA (termed recA75/17(green)-HA-M2-RFP). M2 expression in cells transfected or infected with these mutants was studied by immunoprecipitation, immunofluorescence, immunoblot and flow cytometry analyses. Although fluorescence was readily detected in HA-M2-RFP-transfected cells, absence of red fluorescence emission in several recA75/17(green)-HA-M2-RFP-infected cell types suggested lack of M2 biosynthesis, which was confirmed by the other techniques. Consistent with these data, no functional role of the short polypeptide was revealed by infecting various cell types with HA-M2-RFP over-expressing or M2-knockout recombinant viruses. Thus, in sharp contrast to the CDV-F 5' UTR reported to translate a long Fsp, our data provided evidence that the CDV-M 3' UTR does not express any polypeptides.

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The epidemiology, phylogeny, and biology of nonencapsulated Streptococcus pneumoniae are largely unknown. Increased colonization capacity and transformability are, however, intriguing features of these pneumococci and play an important role. Twenty-seven nonencapsulated pneumococci were identified in a nationwide collection of 1,980 nasopharyngeal samples and 215 blood samples obtained between 1998 and 2002. On the basis of multilocus sequence typing and capsule region analysis we divided the nonencapsulated pneumococci into two groups. Group I was closely related to encapsulated strains. Group II had a clonal population structure, including two geographically widespread clones able to cause epidemic conjunctivitis and invasive diseases. Group II strains also carried a 1,959-bp homologue of aliB (aliB-like ORF 2) in the capsule region, which was highly homologous to a sequence in the capsule region of Streptococcus mitis. In addition, strains of the two major clones in group II had an additional sequence, aliB-like ORF 1 (1,968 to 2,004 bp), upstream of aliB-like ORF 2. Expression of aliB-like ORF 1 was detected by reverse transcription-PCR, and the corresponding RNA was visualized by Northern blotting. A gene fragment homologous to capN of serotypes 33 and 37 suggests that group II strains were derived from encapsulated pneumococci some time ago. Therefore, loss of capsule expression in vivo was found to be associated with the importation of one or two aliB homologues in some nonencapsulated pneumococci.

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We describe the characterization of the herpes simplex virus type 2 (HSV-2) gene encoding infected cell protein 32 (ICP32) and virion protein 19c (VP19c). We also demonstrate that the HSV-1 UL38/ORF.553 open reading frame (ORF), which has been shown to specify a viral protein essential for capsid formation (B. Pertuiset, M. Boccara, J. Cebrian, N. Berthelot, S. Chousterman, F. Puvian-Dutilleul, J. Sisman, and P. Sheldrick, J. Virol. 63: 2169-2179, 1989), must encode the cognate HSV type 1 (HSV-1) ICP32/VP19c protein. The region of the HSV-2 genome deduced to contain the gene specifying ICP32/VP19c was isolated and subcloned, and the nucleotide sequence of 2,158 base pairs of HSV-2 DNA mapping immediately upstream of the gene encoding the large subunit of the viral ribonucleotide reductase was determined. This region of the HSV-2 genome contains a large ORF capable of encoding two related 50,538- and 49,472-molecular-weight polypeptides. Direct evidence that this ORF encodes HSV-2 ICP32/VP19c was provided by immunoblotting experiments that utilized antisera directed against synthetic oligopeptides corresponding to internal portions of the predicted polypeptides encoded by the HSV-2 ORF or antisera directed against a TrpE/HSV-2 ORF fusion protein. The type-common immunoreactivity of the two antisera and comparison of the primary amino acid sequences of the predicted products of the HSV-2 ORF and the equivalent genomic region of HSV-1 provided evidence that the HSV-1 UL38 ORF encodes the HSV-1 ICP32/VP19c. Analysis of the expression of the HSV-1 and HSV-2 ICP32/VP19c cognate proteins indicated that there may be differences in their modes of synthesis. Comparison of the predicted structure of the HSV-2 ICP32/VP19c protein with the structures of related proteins encoded by other herpes viruses suggested that the internal capsid architecture of the herpes family of viruses varies substantially.

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Streptococcus pneumoniae is an important cause of bacterial meningitis and pneumonia but usually colonizes the human nasopharynx harmlessly. As this niche is simultaneously populated by other bacterial species, we looked for a role and pathway of communication between pneumococci and other species. This paper shows that two proteins of non-encapsulated S. pneumoniae, AliB-like ORF 1 and ORF 2, bind specifically to peptides matching other species resulting in changes in the pneumococci. AliB-like ORF 1 binds specifically peptide SETTFGRDFN, matching 50S ribosomal subunit protein L4 of Enterobacteriaceae, and facilitates upregulation of competence for genetic transformation. AliB-like ORF 2 binds specifically peptides containing sequence FPPQS, matching proteins of Prevotella species common in healthy human nasopharyngeal microbiota. We found that AliB-like ORF 2 mediates the early phase of nasopharyngeal colonization in vivo. The ability of S. pneumoniae to bind and respond to peptides of other bacterial species occupying the same host niche may play a key role in adaptation to its environment and in interspecies communication. These findings reveal a completely new concept of pneumococcal interspecies communication which may have implications for communication between other bacterial species and for future interventional therapeutics.

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Small non-protein-coding RNA (ncRNA) molecules have been recognized recently as major contributors to regulatory networks in controlling gene expression in a highly efficient manner. While the list of validated ncRNAs that regulate crucial cellular processes grows steadily, not a single ncRNA has been identified that directly interacts and regulates the ribosome during protein biosynthesis (with the notable exceptions of 7SL RNA and tmRNA). All of the recently discovered regulatory ncRNAs that act on translation (e.g. microRNAs, siRNAs or antisense RNAs) target the mRNA rather than the ribosome. This is unexpected, given the central position the ribosome plays during gene expression. To investigate whether such a class of regulatory ncRNAs does exist we performed genomic screens for small ribosome-associated RNAs in various model organisms of all three domains [1,2]. Here we focus on the functional characterisation of an 18 nucleotide long ncRNA candidate derived from an open reading frame (ORF) of an annotated S. cerevisiae gene, which encodes a tRNA methyltransferase. Yeast cells lacking this tRNA methyltransferase showed clear growth defects in high salt containing media. Genetic analysis showed that the absence of the mRNA-derived ncRNA rather than the absence of the tRNA methyltransferase activity is responsible for the observed phenotype. Since we performed a screen for small ribosome-associated RNAs we examined the regulatory potential of the synthetic 18mer during translation in vitro and in vivo. Metabolic labeling experiments in the presence of the synthetic 18mer RNA revealed an inhibitory potential on the global protein biosynthesis rate. In vitro translation and northern blot analysis further strengthen the hypothesis, that this RNA is a ribosome-associated regulatory ncRNA. Our studies in pro- and eukaryotic model organisms reveal the ribosome as a novel target for small regulatory ncRNAs in all domains of life. Ribosome-bound ncRNAs are capable of fine tuning translation and might represent a so far largely unexplored class of regulatory ncRNAs.