21 resultados para Argonaute


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tRNA-derived RNA fragments (tRFs) are 19mer small RNAs that associate with Argonaute (AGO) proteins in humans. However, in plants, it is unknown if tRFs bind with AGO proteins. Here, using public deep sequencing libraries of immunoprecipitated Argonaute proteins (AGO-IP) and bioinformatics approaches, we identified the Arabidopsis thaliana AGO-IP tRFs. Moreover, using three degradome deep sequencing libraries, we identified four putative tRF targets. The expression pattern of tRFs, based on deep sequencing data, was also analyzed under abiotic and biotic stresses. The results obtained here represent a useful starting point for future studies on tRFs in plants. © 2013 Loss-Morais et al.; licensee BioMed Central Ltd.

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Argonaute 2 gene plays a pivotal role in RNAi in many species. Herein is the first report of the cloning and characterization of Argonaute 2 gene in fish. The full-length cDNA of Gobiocypris rarus Argonaute 2 (GrAgo2) consisted of 3073 nucleotides encoding 869 amino acid residues with a calculated molecular weight of 98.499 kDa and an estimated isoelectric point of 9.18. Analysis of the deduced amino acid sequence showed the presence of two signature domains, PAZ and Piwi. RT-PCR analysis indicated that GrAgo2 mRNA expression could be detected in widespread tissues. After infection with grass carp reovirus, GrAgo2 expression was up-regulated from 12 h post-injection (p < 0.05) and returned to control levels at 48 h post-injection (p > 0.05). These data imply that GrAgo2 is involved in antiviral defense in rare minnow. (C) 2008 Published by Elsevier Ltd.

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Wydział Biologii: Instytut Biologii Molekularnej i Biotechnologii

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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.

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The P0 protein of poleroviruses and P1 protein of sobemoviruses suppress the plant's RNA silencing machinery. Here we identified a silencing suppressor protein (SSP), P0PE, in the Enamovirus Pea enation mosaic virus-1 (PEMV-1) and showed that it and the P0s of poleroviruses Potato leaf roll virus and Cereal yellow dwarf virus have strong local and systemic SSP activity, while the P1 of Sobemovirus Southern bean mosaic virus supresses systemic silencing. The nuclear localized P0PE has no discernable sequence conservation with known SSPs, but proved to be a strong suppressor of local silencing and a moderate suppressor of systemic silencing. Like the P0s from poleroviruses, P0PE destabilizes AGO1 and this action is mediated by an F-box-like domain. Therefore, despite the lack of any sequence similarity, the poleroviral and enamoviral SSPs have a conserved mode of action upon the RNA silencing machinery. © 2012 Elsevier Inc.

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Double-stranded RNA and associated proteins are known to regulate the gene expression of most eukaryotic organisms. These regulation pathways have different components, outcomes and distinct nomenclature depending on the model system, and often they are referred to collectively as RNA silencing. In many cases, RNA-dependent RNA polymerases (RdRPs) are found to be involved in the RNA silencing, but their targets, activities, interaction partners and reaction products remain enigmatic. In the filamentous fungus Neurospora crassa, the RdRP QDE-1 is critical for silencing of transgenes a phenomenon known as quelling. In this thesis the structure, biochemical activities and biological functions of QDE-1 were extensively studied. This dimeric RdRP was shown to possess five distinct catalytic in vitro activities that could be dissected by mutagenesis and by altering reaction conditions. The biochemical characterization implied that QDE-1 is actually an active DNA-dependent RNA polymerase that has additional RdRP activity. It also provided a structural explanation for the dimerization and suggested a biological framework for the functions of QDE-1 in vivo. (I) QDE-1 was also studied in a broader context along with the other components of the quelling pathway. It was shown that DNA damage in Neurospora causes a dramatic increase in the expression level of the Argonaute protein QDE-2 as well as the synthesis of a novel class of small RNAs known as qiRNAs. The accumulation of qiRNAs was shown to be dependent on several quelling components, and particularly to be derived from an aberrant ssRNA (aRNA) molecule that is synthesized by QDE-1 in the nucleus. The genomic distribution of qiRNA targets was analyzed and the possible biological significance of qiRNAs was studied. Importantly, qiRNAs are the first class of small RNAs that are induced by DNA damage. (II) After establishing that QDE-1 is a multifunctional RNA polymerase with several activities, template specificities and subcellular locations, the focus was turned onto its interaction partners. It had been previously known that QDE-1 associates with Replication Protein A (RPA), but the RecQ helicase QDE-3 was now shown to regulate this interaction. RPA was also observed to promote QDE-1 dependent dsRNA synthesis in vitro. By characterizing the interplay between QDE-1, QDE-3 and RPA, a working model of quelling and qiRNA pathways in Neurospora was presented. (III) This work sheds light on the complexity of the various RNA silencing pathways of a fungal model system. It shows how an RdRP can regulate gene expression on many levels, and suggests novel lines of research in other eukaryotic organisms.

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The ability to reproduce is a defining characteristic of all living organisms. During reproduction, the integrity of genetic material transferred from one generation to the next is of utmost importance. Organisms have diverse strategies to ensure the fidelity of genomic information inherited between generations of individuals. In sexually reproducing animals, the piRNA pathway is an RNA-interference (RNAi) mechanism that protects the genomes of germ cells from the replication of ‘selfish’ genetic sequences called transposable elements (TE). When left unabated, the replication of TE sequences can cause gene disruption, double-stranded DNA breaks, and germ cell death that results in sterility of the organism. In Drosophila, the piRNA pathway is divided into a cytoplasmic and nuclear branch that involves the functions of three Piwi-clade Argonaute proteins—Piwi, Aubergine (Aub) and Argonaute-3 (Ago3)—which bind piwi-interacting RNA (piRNA) to form the effector complexes that represses deleterious TE sequences.

The work presented in this thesis examines the function and regulation of Piwi proteins in Drosophila germ cells. Chapter 1 presents an introduction to piRNA biogenesis and to the essential roles occupied by each Piwi protein in the repression of TE. We discuss the architecture and function of germ granules as the cellular compartments where much of the piRNA pathway operates. In Chapter 2, we present how Piwi in the nucleus co-transcriptionally targets genomic loci expressing TE sequences to direct the deposition of repressive chromatin marks. Chapter 3 examines the cytoplasmic function of the piRNA pathway, where we find that the protein Krimper coordinates Aub and Ago3 in the piRNA ping-pong pathway to adaptively target and destroy TE transcripts. Chapter 4 explores how interactions of Piwis with associated proteins are modulated by arginine methylation modifications. Lastly, in Chapter 5 I present evidence that the cytoplasmic branch of the piRNA pathway can potentially ‘cross-talk’ with the nuclear branch to transfer sequence information to better target and co-transcriptionally silence the genomic loci coding active TE sequences. Overall, the work presented in this thesis constitutes a part of the first steps in understanding the molecular mechanisms that protect germ cells from invasion by TE sequences.

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In addition to the three RNA polymerases (RNAP I-III) shared by all eukaryotic organisms, plant genomes encode a fourth RNAP (RNAP IV) that appears to be specialized in the production of siRNAs. Available data support a model in which dsRNAs are generated by RNAP IV and RNA-dependent RNAP 2 (RDR2) and processed by DICER (DCL) enzymes into 21- to 24-nt siRNAs, which are associated with different ARGONAUTE (AGO) proteins for transcriptional or posttranscriptional gene silencing. However, it is not yet clear what fraction of genomic siRNA production is RNAP IV-dependent, and to what extent these siRNAs are preferentially processed by certain DCL(s) or associated with specific AGOs for distinct downstream functions. To address these questions on a genome-wide scale, we sequenced approximately 335,000 siRNAs from wild-type and RNAP IV mutant Arabidopsis plants by using 454 technology. The results show that RNAP IV is required for the production of >90% of all siRNAs, which are faithfully produced from a discrete set of genomic loci. Comparisons of these siRNAs with those accumulated in rdr2 and dcl2 dcl3 dcl4 and those associated with AGO1 and AGO4 provide important information regarding the processing, channeling, and functions of plant siRNAs. We also describe a class of RNAP IV-independent siRNAs produced from endogenous single-stranded hairpin RNA precursors.

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MicroRNAs (miRNAs)是一类长约21-25nt 的非编码小分子RNAs,通过与靶基因的互补结合在转录水平及转录后水平来负调控基因表达。人们已在众多高等多细胞生物中如人、果蝇、线虫、拟南芥等鉴定出众多microRNAs 分子。近来报道单细胞原生生物衣藻中也存在大量microRNAs。然而到目前为止,在被很多证据证实是最原始的单细胞真核生物贾第虫中却仍未有microRNAs 的报道。那么到底贾第虫这种具有特殊进化地位的单细胞原生动物是否存在有microRNAs 呢?如果存在的话,其microRNAs 的特点是什么?与高等多细胞生物及单细胞衣藻的 microRNA 相比又有何异同点呢?贾第虫的microRNAs 是否与其致病性相关呢?已有研究表明,贾第虫基因组中存在与RNAi 相关的Argonaute(AGO)家族蛋白和Dicer 酶。有意思的是,这些与siRNA 引起RNAi 作用关键的蛋白AGO 和Dicer 同样也是miRNA 系统的关键成份,这就提示我们在贾第虫中很有可能也存在有miRNA 并发挥功能。有研究发现在贾第虫基因组中存在大量的非编码转录物,这些大量的非编码转录物中,是否都是后来所认为的为双向启动子转录有用基因时的副产物,还是也存在一些起调控作用的RNA 分子(如miRNAs 等),需要进一步的研究。本文利用生物信息学的手段,依据miRNAs 的生物学特征,结合多种计算机预测的方法,在贾第虫基因组中筛选可能的microRNAs 分子,结果共鉴定出50 个miRNAs 候选分子,这50 个可能的贾第虫miRNAs 不具有保守性,在已知的其他物种的miRNAs 中找不到同源物。用这50 个microRNAs BLASTN 贾第虫的蛋白质编码序列及其相邻5’端和3’端各200bp 的序列,来寻找这些microRNAs 所调控的靶基因。结果表明,寻找到的贾第虫miRNA 的靶基因除很大一部分未知功能的蛋白外,还包括了很多涉及不同功能的蛋白,如VSP 蛋白(various surface proteins)这样一类表面抗原蛋白,提示我们贾第虫miRNA 可能与其致病性相关。接下来我们对其中14 个预测的贾第虫microRNAs 进行了RT-PCR 检测并克隆测序,结果表明gla-mir-6, gla-mir-35 在贾第虫滋养体细胞中稳定表达。我们的研究第一次用生物信息学结合实验的方法在贾第虫寻找到了microRNAs,为下一步深入研究这些microRNAs 在贾第虫中的功能提供了可能。

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The worldwide shrimp culture is beset with diseases mainly caused by white spot syndrome virus (WSSV) and suffered huge economic losses, which bring out an urgent need to develop the novel strategies to better protect shrimps against WSSV. In the present study, CpG-rich plasmid pUC57-CpG, plasmid pUC57 and PBS were employed to pretreat shrimps comparatively to evaluate the protective effects of CpG ODNs on shrimps against WSSV. The survival rates, WSSV copy numbers, and antiviral associated factors (Dicer, Argonaute, STAT and ROS) were detected in Litopenaeus vannamei. There were higher survival proportion, lower WSSV copy numbers, and higher mRNA expression of Dicer and STAT in pUC57-CpG-pretreatment shrimps than those in pUC57- and PBS-pretreatment shrimps after WSSV infection. The Argonaute mRNA expression in pUC57-CpG-, pUC57- and PBS-pretreatment shrimps after WSSV infection was significantly higher than that of shrimps post PBS stimulation on the first day. The ROS levels in pUC57-CpG-pretreatment shrimps post secondary stimulation of PBS were significantly higher than those post WSSV infection on the first day. These results together demonstrated that pUC57-CpG induced partial protective immunity in shrimps against WSSV via intermediation of virus replication indirectly and could be used as a potential candidate in the development of therapeutic agents for disease control of WSSV in L. vannamei. (C) 2009 Elsevier Ltd. All rights reserved.

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Dissertação de mest., Engenharia Biológica, Faculdade de Ciências e Tecnologia, Univ. do Algarve, 2011

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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.

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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.

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 Development of transgenic zebrafish specifically resistant to Viral Hemorrhagic Septicemia Virus mediated by short-hairpin RNA interference. Introduction of shRNAs by Tol2 transgenisis in to zebrafish overwhelmed multiple facets of the endogenous microRNA pathway including Exportin-5 and Argonaute-2 and prevented normal zebrafish development.