924 resultados para RNA silencing
Resumo:
Microarray data analysis is one of data mining tool which is used to extract meaningful information hidden in biological data. One of the major focuses on microarray data analysis is the reconstruction of gene regulatory network that may be used to provide a broader understanding on the functioning of complex cellular systems. Since cancer is a genetic disease arising from the abnormal gene function, the identification of cancerous genes and the regulatory pathways they control will provide a better platform for understanding the tumor formation and development. The major focus of this thesis is to understand the regulation of genes responsible for the development of cancer, particularly colorectal cancer by analyzing the microarray expression data. In this thesis, four computational algorithms namely fuzzy logic algorithm, modified genetic algorithm, dynamic neural fuzzy network and Takagi Sugeno Kang-type recurrent neural fuzzy network are used to extract cancer specific gene regulatory network from plasma RNA dataset of colorectal cancer patients. Plasma RNA is highly attractive for cancer analysis since it requires a collection of small amount of blood and it can be obtained at any time in repetitive fashion allowing the analysis of disease progression and treatment response.
Resumo:
With molecular biology methods and bioinformatics, the Argonaute proteins in Dictyostelium discoideum were characterized, and the function of the AgnA protein in RNAi and DNA methylation was investigated, as well as cellular features. Also interaction partners of the PAZ-Piwi domain of AgnA (PAZ-PiwiAgnA) were discovered. The Dictyostelium genome encodes five Argonaute proteins, termed AgnA/B/C/D/E. The expression level of Argonaute proteins was AgnB/D/E > AgnA > AgnC. All these proteins contain the characteristic conserved of PAZ and Piwi domains. Fluorescence microscopy revealed that the overexpressed C-terminal GFP-fusion of PAZ-PiwiAgnA (PPWa-GFP) localized to the cytoplasm. Overexpression of PPWa-GFP leaded to an increased gene silencing efficiency mediated by RNAi but not by antisense RNA. This indicated that PAZ-PiwiAgnA is involved in the RNAi pathway, but not in the antisense pathway. An analysis of protein-protein interactions by a yeast-two-hybrid screen on a cDNA library from vegetatively grown Dictyostelium revealed that several proteins, such as EF2, EF1-I, IfdA, SahA, SamS, RANBP1, UAE1, CapA, and GpdA could interact with PAZ-PiwiAgnA. There was no interaction between PAZ-PiwiAgnA and HP1, HelF and DnmA detected by direct yeast-two-hybrid analysis. The fluorescence microscopy images showed that the overexpressed GFP-SahA or IfdA fusion proteins localized to both cytoplasm and nuclei, while the overexpressed GFP-SamS localized to the cytoplasm. The expression of SamS in AgnA knock down mutants was strongly down regulated on cDNA and mRNA level in, while the expression of SahA was only slightly down regulated. AgnA knock down mutants displayed defects in growth and phagocytosis, which suggested that AgnA affects also cell biological features. The inhibition of DNA methylation on DIRS-1 and Skipper retroelements, as well as the endogenous mvpB and telA gene, observed for the same strains, revealed that AgnA is involved in the DNA methylation pathway. Northern blot analysis showed that Skipper and DIRS-1 were rarely expressed in Ax2, but the expression of Skipper was upregulated in AgnA knock down mutants, while the expression of DIRS-1 was not changed. A knock out of the agnA gene failed even though the homologous recombination of the disruption construct occurred at the correct site, which indicated that there was a duplication of the agnA gene in the genome. The same phenomenon was also observed in ifdA knock out experiments.
Resumo:
DNA methyltransferases of type Dnmt2 are a highly conserved protein family with enigmatic function. The aim of this work was to characterize DnmA, the Dnmt2 methyltransferase in Dictyostelium discoideum, and further to investigate its implication in DNA methylation and transcriptional gene silencing. The genome of the social amoeba Dictyostelium encodes DnmA as the sole DNA methyltransferase. The enzyme bears all ten characteristic DNA methyltransferase motifs in its catalytic domain. The DnmA mRNA was found by RT-PCR to be expressed during vegetative growth and down regulated during development. Investigations using fluorescence microscopy showed that both DnmA-myc and DnmA-GFP fusions predominantly localised to the nucleus. The function of DnmA remained initially unclear, but later experiment revealed that the enzyme is an active DNA methyltransferase responsible for all DNA (cytosine) methylation in Dictyostelium. Neither in gel retardation assays, nor by the yeast two hybrid system, clues on the functionality of DnmA could be obtained. However, immunological detection of the methylation mark with an α - 5mC antibody gave initial evidence that the DNA of Dictyostelium was methylated. Furthermore, addition of 5-aza-cytidine as demethylating agent to the Dictyostelium medium and subsequent in vitro incubation of the DNA isolated from these cells with recombinant DnmA showed that the enzyme binds slightly better to this target DNA. In order to investigate further the function of the protein, a gene knock-out for dnmA was generated. The gene was successfully disrupted by homologous recombination, the knock-out strain, however, did not show any obvious phenotype under normal laboratory conditions. To identify specific target sequences for DNA methylation, a microarray analysis was carried out. Setting a threshold of at least 1.5 fold for differences in the strength of gene expression, several such genes in the knock-out strain were chosen for further investigation. Among the up-regulated genes were the ESTs representing the gag and the RT genes respectively of the retrotransposon skipper. In addition Northern blot analysis confirmed the up-regulation of skipper in the DnmA knock-out strain. Bisufite treatment and sequencing of specific DNA stretches from skipper revealed that DnmA is responsible for methylation of mostly asymmetric cytosines. Together with skipper, DIRS-1 retrotransposon was found later also to be methylated but was not present on the microarray. Furthermore, skipper transcription was also up-regulated in strains that had genes disrupted encoding components of the RNA interference pathway. In contrast, DIRS 1 expression was not affected by a loss of DnmA but was strongly increased in the strain that had the RNA directed RNA polymerase gene rrpC disrupted. Strains generated by propagating the usual wild type Ax2 and the DnmA knock-out cells over 16 rounds in development were analyzed for transposon activity. Northern blot analysis revealed activation for skipper expression, but not for DIRS-1. A large number of siRNAs were found to be correspondent to the DIRS-1 sequence, suggesting concerted regulation of DIRS-1 expression by RNAi and DNA methylation. In contrast, no siRNAs corresponding to the standard skipper element were found. The data show that DNA methylation plays a crucial role in epigenetic gene regulation in Dictyostelium and that different, partially overlapping mechanisms control transposon silencing for skipper and DIRS-1. To elucidate the mechanism of targeting the protein to particular genes in the Dictyostelium genome, some more genes which were up-regulated in the DnmA knock-out strain were analyzed by bisulfite sequencing. The chosen genes are involved in the multidrug response in other species, but their function in Dictyostelium is uncertain. Bisulfite data showed that two of these genes were methylated at asymmetrical C-residues in the wild type, but not in DnmA knock-out cells. This suggested that DNA methylation in Dictyostelium is involved not only in transposon regulation but also in transcriptional silencing of specific genes.
Resumo:
Das Protein Orb2, welches zum Xenopus CPEB homolog ist, erfüllt während der Spermatogenese von Drosophila melanogaster eine wesentliche Funktion. Das teilweise Ausschalten von orb2 führt zu Störungen in der Individualisierung der Spermatiden, Veränderung in der Morphologie und Lokalisation der Spermatidenkerne und damit verbunden zu männlicher Sterilität. Der weit gestreute Phänotyp spricht für eine regulatorische Funktion des Proteins, wie es aufgrund der Homologie zu CPEB zu erwarten ist. Orb2 mutante Weibchen zeigen dagegen keinen Phänotyp. Die Sterilität konnte mit spezifischen Rettungskonstrukten rückgängig gemacht werden, wobei die beiden Proteinformen in ihrer Funktion höchstwahrscheinlich äquivalent sind, da eine größere Menge an kleinem Protein das Fehlen des größeren ausgleichen kann. Beide Proteinformen lokalisieren in fast alle Stadien der Spermatogenese, wobei nur das kleinere auch in reifen Spermien persistiert. Zur Untersuchung der regulatorischen Funktion des Proteins Orb2 wurden zunächst drei mögliche Protein-Interaktionskandidaten analysiert. Obwohl ähnliche mutante Phänotypen in Gap und Cup ausgelöst wurden, lässt sich eine Interaktion bis jetzt mit diesen Kandidaten weder ausschließen noch bestätigen. Daneben zeigte das Protein Tob eine ähnliche Lokalisierung und einen deutlich ähnlicheren mutanten Phänotyp, wie er für Orb2 beschrieben wurde. Besonders auffällig ist die Lokalisation der Tob mRNA an die Spermatidenenden und die Verringerung der Transkriptmenge in der orb2-Mutante. Ob dieser Phänotyp durch den Verlust der regulatorischen Funktion von Orb2 hervorgerufen wird oder durch den späten Zeitpunkt der Transkription bedingt ist, muß in späteren Experimenten geklärt werden. Mit Hilfe eines Co-Immunpräzipitations-Experimentes wurde nach weiteren Proteininteraktionspartnern sowie nach Ziel-mRNAs gesucht, die durch Orb2 reguliert werden könnten. Dabei ergaben die massenspektrometrischen Analysen zwar Proteine, die mit der Translation selbst in Zusammenhang stehen, sowie einige regulatorische RNA-bindende Proteine, wiesen aber auch in Gestalt eines häufig nachgewiesenen Anhangsdrüsenproteins auf deutliche systematische Probleme hin. Auf genetischem Wege war bereits der Nachweis gelungen, dass die Protamine und mst77F, die strukturelle Komponenten der kompaktierten Kern-DNA sind, durch Orb2 in ihrer Translation reprimiert werden. Dieses Ergebnis wurde zum Teil bestätigt durch den Nachweis der Protamin mRNAs in den Eluaten aus dem Co-Immunpräzipitationsexperiment. Damit konnte zum ersten Mal in der Drosophila Spermatogenese das regulatorische Protein zu einer translationskontrollierten mRNA identifiziert werden.
Resumo:
Eukaryotic DNA m5C methyltransferases (MTases) play a major role in many epigenetic regulatory processes like genomic imprinting, X-chromosome inactivation, silencing of transposons and gene expression. Members of the two DNA m5C MTase families, Dnmt1 and Dnmt3, are relatively well studied and many details of their biological functions, biochemical properties as well as interaction partners are known. In contrast, the biological functions of the highly conserved Dnmt2 family, which appear to have non-canonical dual substrate specificity, remain enigmatic despite the efforts of many researchers. The genome of the social amoeba Dictyostelium encodes Dnmt2-homolog, the DnmA, as the only DNA m5C MTase which allowed us to study Dnmt2 function in this organism without interference by the other enzymes. The dnmA gene can be easily disrupted but the knock-out clones did not show obvious phenotypes under normal lab conditions, suggesting that the function of DnmA is not vital for the organism. It appears that the dnmA gene has a low expression profile during vegetative growth and is only 5-fold upregulated during development. Fluorescence microscopy indicated that DnmA-GFP fusions were distributed between both the nucleus and cytoplasm with some enrichment in nuclei. Interestingly, the experiments showed specific dynamics of DnmA-GFP distribution during the cell cycle. The proteins colocalized with DNA in the interphase and were mainly removed from nuclei during mitosis. DnmA functions as an active DNA m5C MTase in vivo and is responsible for weak but detectable DNA methylation of several regions in the Dictyostelium genome. Nevertheless, gel retardation assays showed only slightly higher affinity of the enzyme to dsDNA compared to ssDNA and no specificity towards various sequence contexts, although weak but detectable specificity towards AT-rich sequences was observed. This could be due to intrinsic curvature of such sequences. Furthermore, DnmA did not show denaturant-resistant covalent complexes with dsDNA in vitro, although it could form covalent adducts with ssDNA. Low binding and methyltransfer activity in vitro suggest the necessity of additional factor in DnmA function. Nevertheless, no candidates could be identified in affinity purification experiments with different tagged DnmA fusions. In this respect, it should be noted that tagged DnmA fusion preparations from Dictyostelium showed somewhat higher activity in both covalent adduct formation and methylation assays than DnmA expressed in E.coli. Thus, the presence of co-purified factors cannot be excluded. The low efficiency of complex formation by the recombinant enzyme and the failure to define interacting proteins that could be required for DNA methylation in vivo, brought up the assumption that post-translational modifications could influence target recognition and enzymatic activity. Indeed, sites of phosphorylation, methylation and acetylation were identified within the target recognition domain (TRD) of DnmA by mass spectrometry. For phosphorylation, the combination of MS data and bioinformatic analysis revealed that some of the sites could well be targets for specific kinases in vivo. Preliminary 3D modeling of DnmA protein based on homology with hDNMT2 allowed us to show that several identified phosphorylation sites located on the surface of the molecule, where they would be available for kinases. The presence of modifications almost solely within the TRD domain of DnmA could potentially modulate the mode of its interaction with the target nucleic acids. DnmA was able to form denaturant-resistant covalent intermediates with several Dictyostelium tRNAs, using as a target C38 in the anticodon loop. The formation of complexes not always correlated with the data from methylation assays, and seemed to be dependent on both sequence and structure of the tRNA substrate. The pattern, previously suggested by the Helm group for optimal methyltransferase activity of hDNMT2, appeared to contribute significantly in the formation of covalent adducts but was not the only feature of the substrate required for DnmA and hDNMT2 functions. Both enzymes required Mg2+ to form covalent complexes, which indicated that the specific structure of the target tRNA was indispensable. The dynamics of covalent adduct accumulation was different for DnmA and different tRNAs. Interestingly, the profiles of covalent adduct accumulation for different tRNAs were somewhat similar for DnmA and hDNMT2 enzymes. According to the proposed catalytic mechanism for DNA m5C MTases, the observed denaturant-resistant complexes corresponded to covalent enamine intermediates. The apparent discrepancies in the data from covalent complex formation and methylation assays may be interpreted by the possibility of alternative pathways of the catalytic mechanism, leading not to methylation but to exchange or demethylation reactions. The reversibility of enamine intermediate formation should also be considered. Curiously, native gel retardation assays showed no or little difference in binding affinities of DnmA to different RNA substrates and thus the absence of specificity in the initial enzyme binding. The meaning of the tRNA methylation as well as identification of novel RNA substrates in vivo should be the aim of further experiments.
Resumo:
Argonauten Proteine übernehmen vielfältige Funktionen in RNA vermittelten Signalwegen zur Genregulation und sind in eukaryotischen Organismen hoch konserviert. Obwohl das Repertoire an kleinen regulatorischen RNAs in D. discoideum schon früh untersucht wurde und dabei sowohl siRNAs als auch miRNAs identifiziert werden konnten, war die Funktion der fünf kodierten Argonauten Proteine zu Beginn meiner Arbeit noch völlig unbekannt. Im Fokus meiner Untersuchung standen die zwei Homologe AgnA und AgnB. Die molekularbiologische Charakterisierung von AgnA hat gezeigt, dass das Protein eine essentielle Funktion bei der posttranskriptionellen Regulation des Retrotransposons DIRS-1 hat. AgnA wird für die Generierung von über 90 % der DIRS-1 siRNAs benötigt, wobei unklar ist, ob die Slicer-Aktivität des Proteins relevant ist oder ob AgnA andere Proteine zur Generierung der kleinen RNAs rekrutiert. Mit Hilfe der Deep Sequencing Analyse kleiner RNAs im AgnA KO konnte die Abreicherung der DIRS-1 siRNAs bestätigt werden. Die Anreicherung von DIRS-1 sense und antisense Transkripten weist deutlich auf eine Deregulation des Retrotransposons bei Abwesenheit von AgnA hin. Der Verlust der AgnA abhängigen Regulationsebene ist nicht nur auf RNA- sondern auch auf DNA-Ebene nachweisbar, da im AgnA Knockout einzelsträngige extrachromosomale DIRS-1 Intermediate nachweisbar sind. Die Analyse dieser Strukturen mit Hilfe von Rasterkraftmikroskopie zeigt, dass die extrachromosomale DNA mit Proteinen assoziiert ist. Das Erscheinungsbild legt die Vermutung nahe, dass es sich um Virus ähnliche Partikel handeln könnte. Die Transposition der DIRS-1 Elemente konnte nicht nachgewiesen werden. Sie schlägt vermutlich fehl, da der zur Integration notwendige DNA-Doppelstrang nicht gebildet wird. Auch wenn der genaue Mechanismus der AgnA abhängigen DIRS-1 Regulation nicht vollständig aufgeklärt werden konnte, weisen die Ergebnisse darauf hin, dass AgnA nicht nur an der Biogenese der kleinen DIRS-1 siRNAs beteiligt ist, sondern auch weiter downstream, vermutlich innerhalb von Effektorkomplexen, als Regulator aktiv ist. AgnB ist nicht an der negativen Regulation des DIRS-1 Retrotransposons beteiligt. Im Gegenteil haben Experimente gezeigt, dass das Protein die Transkription des Elementes und die Bildung von DNA-Intermediaten eher positiv beeinflusst. Im Fall des Retrotransposons Skipper ist unklar, ob die wenigen siRNAs, die identifiziert worden sind, tatsächlich für die Regulation dieses Elementes genutzt werden. Der Knockout von AgnA hat eine Anreicherung der Skipper siRNAs zur Folge, wobei diese sehr variabel ist. Es konnten Skipper Transkripte nachgewiesen werden (Hinas et al., 2007), die wahrscheinlich die Vorläufermoleküle der siRNAs darstellen. Die Menge dieser Transkripte unterscheidet sich allerdings im Wildtyp und den untersuchten Knockout-Stämmen nicht. Bei der Untersuchung der miRNAs zeigte sich eine signifikante Anreicherung dieser regulatorischen RNAs im AgnA Knockout. Die Akkumulation kann durch die Expression von rekombinantem AgnA wieder auf Wildtyp Niveau gebracht werden. Die genaue Funktion von AgnA im miRNA Signalweg konnte aber nicht näher spezifiziert werden. Im Fall der beiden miRNAs konnte im Rahmen dieser Arbeit nachgewiesen werden, dass sie keine 2‘-O Methylierung besitzen und fast ausschließlich im Cytoplasma der Zelle vorliegen. Letzteres weist darauf hin, dass die untersuchten miRNAs ihre Zielgene vermutlich posttranskriptionell regulieren. Die Akkumulation von miRNAs im AgnA KO konnte ebenfalls durch Deep Sequencing Analysen verifiziert werden. Weiterhin wurden tRNA Fragmente gefunden, die im AgnA KO wesentlich stärker vertreten sind. Northern Blot Analysen haben gezeigt, dass ein zusätzliches Fragment der tRNA Asp akkumuliert, wenn AgnA nicht exprimiert wird. Möglicherweise ist AgnA am Umsatz der tRNA beteiligt. Die biologische Funktion der tRNA Fragmente in D. discoideum ist jedoch bisher ungeklärt. Bei der Suche nach putativen Interaktionspartnern konnte im Fall von AgnA das Protein DDB_G0268914 mittels Massenspektrometrie als putativer Interaktionspartner identifiziert werden. Dieses Protein zeigt Homologien zu MOV10 aus H. sapiens, das ebenfalls mit Argonauten Proteinen interagiert (Hock et al., 2007) und die Replikation von Retroviren unterdrückt (Burdick et al., 2010). Die Interaktion zwischen AgnA und dem MOV10 Homolog konnte bisher nicht mit anderen Ansätzen bestätigt werden. Darüber hinaus bleibt zu klären, ob der putative Interaktionsparter ebenfalls an der Regulation des Retrotransposons DIRS-1 beteiligt ist.
Resumo:
RNA mediated gene silencing pathways are highly conserved among eukaryotes and they have been well investigated in animals and in plants. Longer dsRNA molecules trigger the silencing pathways: RNase III proteins and their dsRNA binding protein (dsRBP) partners recognize those molecules as a substrate and process 21 nucleotide long microRNAs (miRNAs) or small interfering RNAs (siRNAs). Some organisms encode RNA dependent RNA polymerases (RdRPs), which are able to expand the pool of existing siRNAs. Argonaute proteins are able to bind small regulatory RNAs and are subsequently recruited to target mRNAs by base complementary. This leads in turn to transcriptional or posttranscriptional silencing of respective genes. The Dictyostelium discoideum genome encodes two Dicer homologues (DrnA and DrnB), five Argonaute proteins (AgnA to AgnE) and three RdRPs (RrpA to RrpC). In addition, the amoeba is known to express miRNAs and siRNAs, while the latter derive mainly from the DIRS-1 retrotransposon. One part of this work focused on the miRNA biogenesis pathway of D. discoideum. It was shown that the dsRNA binding protein RbdB is a necessary component for miRNA processing in the amoeba. There were no mature miRNAs detectable by Northern blot analysis in rbdB- strains, which is also true for drnB mutants. Moreover, primary miRNA-transcripts (pri-miRNAs) accumulated in rbdB- and drnB- strains. Fluorescence microscopy studies showed a nuclear localization of RbdB. RbdB accumulated in distinct perinucleolar foci. These were reminiscent of plant dicing bodies that contain essential protein components for miRNA processing. It is well known that RNase III enzymes and dsRBPs work together during miRNA processing in higher eukaryotes. This work demonstrated that the same is true for members of the amoebozoa supergroup. In Arabidopsis the nuclear zinc finger protein Serrate (SE) is also necessary for miRNA processing. The D. discoideum homologue SrtA, however, is not relevant which has been shown by the analysis of the respective knockdown strain. MiRNAs are known to be differentially expressed in several RNAi knockout strains. The accumulation of miRNAs in agnA- strains and a strong decrease in rbdB- strains were criteria that could thus be successfully used (among others) to identify and validate new miRNAs candidates by Illumina®-RNA sequencing. In another part of this study, the silencing and amplification of the DIRS-1 retrotransposons was analyzed in more detail. It was already known that DIRS-1 transcripts and extrachromosomal DIRS-1 DNA molecules accumulated in agnA- strains. This phenotype was correlated with the loss of endogenous DIRS-1 siRNAs in the knockout strain. By deep sequencing analysis of small RNAs from the AX2 wild type and the agnA- strain, the strong decrease of endogenous DIRS-1 siRNAs in the mutant strain (accounting for 70 %) could be confirmed. Further analysis of the data revealed an unequal distribution of DIRS-1 derived siRNAs along the retroelement in the wild type strain, since only very few of them matched the inverted terminal repeats (ITRs) and the 5’- half of the first open reading frame (ORF). Besides, sense and antisense siRNAs were asymmetrically distributed, as well. By using different reporter constructs it was shown indirectly that AgnA is necessary for the RrpC mediated production of secondary DIRS-1 siRNAs. These analyses also demonstrated an amplification of siRNAs in 5’- and in 3’-direction. Further analysis of the agnA- strain revealed that not only DIRS-1 sense transcripts but also ORF2 and ORF3 encoded proteins were enriched. In contrast, the ORF1 encoded protein GAG was equally expressed in the mutant and the wild type. This might reflect the unequal distribution of endogenous DIRS-1 siRNAs along the retrotransposon. Southern Blot and PCR-analyses showed that extrachromosomal DIRS-1 DNA molecules are present in the cytoplasm of angA- strains and that they are complementary to sense transcripts of intact DIRS-1 elements. Thus, the extrachromosomal DIRS-1 intermediates are likely incomplete cDNA molecules generated by the DIRS-1 encoded reverse transcriptase. One could hypothesize that virus like particles (VLPs) are the places of DIRS-1 cDNA synthesis. At least, DIRS-1 GAG proteins interact and fluorescence microscopy studies showed that they localize in distinct cytoplasmic foci which accumulate in close proximity to the nuclei.
Resumo:
La caracterització funcional de dos gens en la peridermis, la ω hidroxilasa d'àcids grassos CYP86A33 -candidata per la funcionalització del carboni ω-terminal dels monòmers alifàtics de la suberina- i la ketoacyl-CoA sintasa StKCS6 -candidata per elongar àcids grassos o derivats llargs de suberina i ceres- es realitza per silenciament per RNA d'interferència en patata. La deficiència de CYP86A33 comporta una gran reducció dels monòmers principals de la suberina, l'àcid gras ω-hidroxilat i l'α,ω-diàcid C18:1, juntament amb una reducció total de la quantitat de suberina del 60%. Aquesta deficiència altera l'estructura lamel·lar típica de la suberina, així com també la funció barrera de la peridermis. La deficiència en StKCS6 comporta que els monòmers de la suberina de 28 carbonis o més llargs es redueixin i que els de 26 carbonis o més curts s'incrementin. Aquesta deficiència suggereix que la llargada dels compostos alifàtics pot contribuir a les propietats impermeabilitzants de la peridermis.
Resumo:
Em primeiro lugar argumentarei que existem dois modos de tematizar filosoficamente o silêncio: como um fenómeno do mundo e como o silenciamento do filósofo. Este segundo modo constitui um problema cuja carência de solução impede o primeiro modo de tematização. Em segundo lugar, discutirei o cepticismo pirroniano como aquela teoria filosófica que origina o silenciamento do filósofo e contestarei três objeções que defendem que este cepticismo não é construído em modo espúrio. De seguida mostro como o filósofo alemão Georg Hegel se propõe refutar o cepticismo pirroniano no seu magnum opus, a Ciência da Lógica. Finalmente, delineio as consequências da solução hegeliana a este problema para uma tentativa específica na história da filosofia de assegurar um lugar para o silêncio na teoria e na prática ontológica.
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This paper is organized in the following way. First I deal with Hardt’s and Negri’s Empire; the second section of the paper focuses on Beck´s World Risk Society; the third main section of this paper tackles the functional differentiation argument posed by Buzan and Albert. By way of conclusion, the final section of this paper briefly discusses alternatives to grand-narratives and master concepts.
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Small nucleolar RNAs (snoRNAs) and small Cajal body-specific RNAs (scaRNAs) are non-coding RNAs whose main function in eukaryotes is to guide the modification of nucleotides in ribosomal and spliceosomal small nuclear RNAs, respectively. Full-length sequences of Arabidopsis snoRNAs and scaRNAs have been obtained from cDNA libraries of capped and uncapped small RNAs using RNA from isolated nucleoli from Arabidopsis cell cultures. We have identified 31 novel snoRNA genes (9 box C/D and 22 box H/ACA) and 15 new variants of previously described snoRNAs. Three related capped snoRNAs with a distinct gene organization and structure were identified as orthologues of animal U13snoRNAs. In addition, eight of the novel genes had no complementarity to rRNAs or snRNAs and are therefore putative orphan snoRNAs potentially reflecting wider functions for these RNAs. The nucleolar localization of a number of the snoRNAs and the localization to nuclear bodies of two putative scaRNAs was confirmed by in situ hybridization. The majority of the novel snoRNA genes were found in new gene clusters or as part of previously described clusters. These results expand the repertoire of Arabidopsis snoRNAs to 188 snoRNA genes with 294 gene variants.