947 resultados para Neuroblast lineages
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Since the early 20th century, many researchers have attempted to determine how fungi are able to emit light. The first successful experiment was obtained using the classical luciferin-luciferase test that consists of mixing under controlled conditions hot (substrate/luciferin) and cold (enzyme/luciferase) water extracts prepared from bioluminescent fungi. Failures by other researchers to reproduce those experiments using different species of fungi lead to the hypothesis of a non-enzymatic luminescent pathway. Only recently, the involvement of a luciferase in this system was proven, thus confirming its enzymatic nature. Of the 100 000 described species in Kingdom Fungi, only 71 species are known to be luminescent and they are distributed unevenly amongst four distantly related lineages. The question we address is whether the mechanism of bioluminescence is the same in all four evolutionary lineages suggesting a single origin of luminescence in the Fungi, or whether each lineage has a unique mechanism for light emission implying independent origins. We prepared hot and cold extracts of numerous species representing the four bioluminescent fungal lineages and performed cross-reactions (luciferin x luciferase) in all possible combinations using closely related non-luminescent species as controls. All cross-reactions with extracts from luminescent species yielded positive results, independent of lineage, whereas no light was emitted in cross-reactions with extracts from non-luminescent species. These results support the hypothesis that all four lineages of luminescent fungi share the same type of luciferin and luciferase, that there is a single luminescent mechanism in the Fungi, and that fungal luciferin is not a ubiquitous molecule in fungal metabolism.
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Introduction: Although Enterococcus faecalis is a member of the normal microbiota, it is also a major cause of nosocomial infections. Some strains of E. faecalis produce capsule, which contributes to pathogenesis through evasion of host defenses, and its production is dependent on the capsule (cps) operon polymorphism. This study investigated cps locus polymorphism in distinct lineages of E. faecalis isolated from canals of root-filled teeth with periapical lesions. Methods: Twenty-two E. faecalis isolates were evaluated regarding the cps operon polymorphism and genetic diversity. The 3 known CPS types were determined by polymerase chain reaction. This information was correlated with multilocus sequence typing data, which were used to define genetic lineages. Results: cpsA and cpsB were the only detected genes within the cps operon in 62.5% of E. faecalis strains (14/22), indicative of genotype CPS 1, which lacks capsule expression. The essential genes in the cps operon for capsule production were detected in the remaining strains, whereas 3 belonged to genotype CPS 5 and 5 strains to genotype CPS 2. A total of 14 sequence types (STs) were resolved in 22 E. faecalis isolates. Comparison with the E. faecalis international multilocus sequence typing database revealed that 9 STs were previously found, and that the 5 STs were novel. Conclusions: Certain E. faecalis genotypes from canals of root-filled teeth with periapical lesions belong to lineages associated with capsule expression and production of multiple virulence factors, which might account for their increased pathogenic potential. (J Endod 2012;38:58-61)
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In Brazil, bats have been assigned an increasing importance in public health as they are important rabies reservoirs. Phylogenetic studies have shown that rabies virus (RABV) strains from frugivorous bats Artibeus spp. are closely associated to those from the vampire bat Desmodus rotundus, but little is known about the molecular diversity of RABV in Artibeus spp. The N and G genes of RABV isolated from Artibeus spp. and cattle infected by D. rotundus were sequenced, and phylogenetic trees were constructed. The N gene nucleotides tree showed three clusters: one for D. rotundus and two for Artibeus spp. Regarding putative N amino acid-trees, two clusters were formed, one for D. rotundus and another for Artibeus spp. RABV G gene phylogeny supported the distinction between D. rotundus and Artibeus spp. strains. These results show the intricate host relationship of RABV's evolutionary history, and are invaluable for the determination of RABV infection sources. (C) 2012 Elsevier Editora Ltda. All rights reserved.
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In Brazil, bats have been assigned an increasing importance in public health as they are important rabies reservoirs. Phylogenetic studies have shown that rabies virus (RABV) strains from frugivorous bats Artibeus spp. are closely associated to those from the vampire bat Desmodus rotundus, but little is known about the molecular diversity of RABV in Artibeus spp. The N and G genes of RABV isolated from Artibeus spp. and cattle infected by D. rotundus were sequenced, and phylogenetic trees were constructed. The N gene nucleotides tree showed three clusters: one for D. rotundus and two for Artibeus spp. Regarding putative N amino acid-trees, two clusters were formed, one for D. rotundus and another for Artibeus spp. RABV G gene phylogeny supported the distinction between D. rotundus and Artibeus spp. strains. These results show the intricate host relationship of RABV's evolutionary history, and are invaluable for the determination of RABV infection sources.
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Introduction: Enterococcus faecalis is a member of the mammalian gastrointestinal microbiota but has been considered a leading cause of hospital-acquired infections. In the oral cavity, it is commonly detected from root canals of teeth with failed endodontic treatment. However, little is known about the virulence and genetic relatedness among E. faecalis isolates from different clinical sources. This study compared the presence of enterococcal virulence factors among root canal strains and clinical isolates from hospitalized patients to identify virulent clusters of E. faecalis. Methods: Multilocus sequence typing analysis was used to determine genetic lineages of 40 E. faecalis clinical isolates from different sources. Virulence clusters were determined by evaluating capsule (cps) locus polymorphisms, pathogenicity island gene content, and antibiotic resistance genes by polymerase chain reaction. Results: The clinical isolates from hospitalized patients formed a phylogenetically separate group and were mostly grouped in the clonal complex 2, which is a known virulent cluster of E. faecalis that has caused infection outbreaks globally. The clonal complex 2 group comprised capsule-producing strains harboring multiple antibiotic resistance and pathogenicity island genes. On the other hand, the endodontic isolates were more diverse and harbored few virulence and antibiotic resistance genes. In particular, although more closely related to isolates from hospitalized patients, capsuleproducing E. faecalis strains from root canals did not carry more virulence/antibiotic genes than other endodontic isolates. Conclusions: E. faecalis isolates from endodontic infections have a genetic and virulence profile different from pathogenic clusters of hospitalized patients’ isolates, which is most likely due to niche specialization conferred mainly by variable regions in the genome.
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Financial Support: FAPESP
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Trabalho apresentado à 23ª Revista de Educação Continuada em Medicina Veterinária e Zootecnia, 2012, São Paulo
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Departamento de Biología y Geología, Universidad Rey Juan Carlos, Madrid, Spain. Department of Botany, Swedish Museum of Natural History, Stockholm, Sweden
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Die vorliegende Arbeit gewährte neue Einblicke in zwei fundamentale Vorgänge der frühen Neurogenese von Drosophila melanogaster. Der erste Teil untersuchte die zeitliche Spezifizierung der Neuroblastenidentitäten. Durch die Expression verschiedener Gene entlang der Dorsoventral- und der Anterioposteriorachse wird ein kartesisches Koordinatensystem aufgebaut, indem ein Neuroblast (NB), der in einem bestimmten Quadranten entsteht, eine spezifische Identität erhält. Die Delamination der NBs erfolgt in fünf Segregationswellen, wobei in jeder Welle die gleiche Population NBs gebildet wird. In dieser Arbeit konnte nun gezeigt werden, dass es nicht nur einen räumlichen, sondern auch einen zeitlichen Aspekt bei der Entstehung der NBs gibt: So zeigten Transplantationsexperimente, dass sowohl im frühen als auch im späten Neuroektoderm extrinsische induktive Signale an der Spezifizierung der Neuroblastenidentität beteiligt sind. Die Natur dieser Signale bleibt noch unklar. Allerdings stellen die Segmentpolaritätsgene aufgrund ihrer dynamischen Expression eine potenzielle Kandidatengruppe dar. Der zweite Teil beschäftigte sich mit der segmentalen Spezifizierung der Neuroblasten. Für diesen Prozess zeigten frühere Genexpressionsstudien, dass NBs, die zwar an korrespondierenden Positionen innerhalb des kartesischen Systems, aber in unterschiedlichen Segmenten gebildet werden, die gleichen Genexpressionsmuster aufweisen und fast identische Zellstammbäume hervorbringen. Einige dieser seriell homologen NBs generieren jedoch segmentspezifische Zellstammbäume – ein solches Beispiel ist der NB6-4, der als Modellsystem benutzt wurde. Für die thorakale Variante dieses NBs konnte ich zeigen, dass die Homöotischen Gene zur Spezifizierung nicht notwendig sind – thorakales Schicksal ist eine Grundidentität. Diese wird in abdominalen Segmenten jedoch durch die Funktion der Homöotischen Gene abdominal-A (abd-A) und Abdominal-B (Abd-B) in abdominales Schicksal transformiert. Dieser segmentale Unterschied wird durch die Regulation des Zellzyklusgens CycE bewerkstelligen. Genauer: CycE ist notwendig, um neurogliales Schicksal in thorakalen Segmenten zu generieren und ausreichend, dieses Schicksal ebenfalls in abdominalen Segmenten zu erzeugen. Eine direkte Inhibierung der Expression von CycE durch Abd-A in abdominalen Segmenten führt dagegen zu einer differenziellen Expression von CycE im neuronalen thorakalen Anteil des Zellstammbaums. Weiterhin konnten in einem Enhancerelement, das für die Expression von CycE im Nervensystem verantwortlich ist, mehrere Bindestellen für Abd-A und Abd-B gefunden werden. Die gewonnen Daten legen – in Verbindung mit bereits bekannten Ergebnissen – den Schluss nahe, dass diese neuronspezifizierende Funktion von CycE unabhängig von seiner Rolle im Zellzyklus ist.
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In dieser Arbeit wurden Mechanismen der Musterbildung in der terminalen Abdominalregion des Zentralnervensystems von Drosophila melanogaster untersucht. Dazu wurden zunächst die Anzahl der angelegten Neuromere und das Muster der dort lokalisierten neuralen Stammzellen (Neuroblasten) analysiert. Dabei zeigte sich, dass sowohl die Größe der Neuromere, als auch die Anzahl an Neuroblasten von anterior nach posterior sukzessiv abnimmt, wobei keine geschlechtsspezifischen Unterschiede in der Anzahl der vorhandenen Neuroblasten festgestellt werden konnten. Durch die Kombination einer Vielzahl von molekularen Markern war es anschließend möglich, die Identität aller Neuroblasten in diesem Bereich aufzuklären und in einer Karte zusammenzutragen. Sie weisen alle eine serielle Homologie zu Neuroblasten in weiter anterior gelegenen Segmenten auf. Des Weiteren wurde die embryonale Identität der geschlechtsspezifischen Neuroblasten untersucht und deren postembryonalen mänchenspezifischen Zellstammbäume charakterisiert. Diese detaillierten Beschreibungen bildeten die Grundlage für die funktionelle Analyse von geschlechts- und segmentspezifischen Faktoren, die zur Musterbildung in dieser Region des Zentralnervensystems beitragen. So konnte gezeigt werden, dass die weibliche Isoform von doublesex den programmierten Zelltod der geschlechtsspezifischen Neuroblasten induziert, während die männliche Isoform diesen verhindert. Das Hox-Gen Abdominal-B zeigt relativ milde Effekte auf das Überleben dieser Neuroblasten, was darauf hindeutet, dass weitere Faktoren benötigt werden, um diesen Prozess in segmentspezifischer Weise zu kontrollieren. Die Funktion von Hox-Genen wurde ferner im Hinblick auf die abgeleitete Morphologie der terminalen Neuromere untersucht. Es konnte herausgefunden werden, dass die regulatorische Isoform von Abdominal-B auf mehreren Ebenen wirkt: Sie beeinflusst die Zusammensetzung bestimmter Zellstammbäume durch Modifikation von Zelldeterminationsprozessen und durch die Kontrolle des programmierten Zelltods. Außerdem unterdrückt sie die Bildung einer spezifischen Subpopulation von Neuroblasten. Allerdings benötigt Abdominal-B.r die Co-Expression des ParaHox-Gens caudal, um sein gesamtes Potenzial bezüglich der Suppression dieser Neuroblasten zu entfalten. Die vorliegende Arbeit hat somit erste Einblicke in die geschlechtsspezifische und segmentspezifische Spezifizierung der terminalen Abdominalregion des Zentralnervensystems von Drosophila auf Ebene des Neuroektoderms, der daraus hervorgehenden Neuroblasten und deren Tochterzellen gewährt. Die vollständige und detailgetreue Beschreibung des Neuroblasten-Musters und der postembryonalen männchenspezifischen Zellstammbäume hat zudem attraktive Modellsysteme für zukünftige Untersuchungen etabliert, an denen sich weitere Mechanismen der Musterbildung im Zentralnervensystem analysieren lassen.
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The European trout (Salmo trutta species complex) is genetically very diverse consisting of five distinct mitochondrial lineages that probably originated in the Pleistocene. Here, we describe a novel pyrosequencing protocol to generate two short sequence reads from the mitochondrial control region, which allow the unambiguous identification of all five lineages. The approach was found to be easily transferable between laboratories and should be a valuable tool for the assessment of genetic diversity in trout. Pyrosequencing-based assays for molecular species identification are expected to be generally useful whenever multiple positions in a short DNA sequence need to be assessed.
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The three-spined stickleback is a widespread Holarctic species complex that radiated from the sea into freshwaters after the retreat of the Pleistocene ice sheets. In Switzerland, sticklebacks were absent with the exception of the far northwest, but different introduced populations have expanded to occupy a wide range of habitats since the late 19th century. A well-studied adaptive phenotypic trait in sticklebacks is the number of lateral plates. With few exceptions, freshwater and marine populations in Europe are fixed for either the low plated phenotype or the fully plated phenotype, respectively. Switzerland, in contrast, harbours in close proximity the full range of phenotypic variation known from across the continent. We addressed the phylogeographic origins of Swiss sticklebacks using mitochondrial partial cytochrome b and control region sequences. We found only five different haplotypes but these originated from three distinct European regions, fixed for different plate phenotypes. These lineages occur largely in isolation at opposite ends of Switzerland, but co-occur in a large central part. Across the country, we found a strong correlation between a microsatellite linked to the high plate ectodysplasin allele and the mitochondrial haplotype from a region where the fully plated phenotype is fixed. Phylogenomic and population genomic analysis of 481 polymorphic amplified fragment length polymorphism loci indicate genetic admixture in the central part of the country. The same part of the country also carries elevated within-population phenotypic variation. We conclude that during the recent invasive range expansion of sticklebacks in Switzerland, adaptive and neutral between-population genetic variation was converted into within-population variation, raising the possibility that hybridization between colonizing lineages contributed to the ecological success of sticklebacks in Switzerland.
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An often-overlooked aspect of neural plasticity is the plasticity of neuronal composition, in which the numbers of neurons of particular classes are altered in response to environment and experience. The Drosophila brain features several well-characterized lineages in which a single neuroblast gives rise to multiple neuronal classes in a stereotyped sequence during development. We find that in the intrinsic mushroom body neuron lineage, the numbers for each class are highly plastic, depending on the timing of temporal fate transitions and the rate of neuroblast proliferation. For example, mushroom body neuroblast cycling can continue under starvation conditions, uncoupled from temporal fate transitions that depend on extrinsic cues reflecting organismal growth and development. In contrast, the proliferation rates of antennal lobe lineages are closely associated with organismal development, and their temporal fate changes appear to be cell-cycle dependent, such that the same numbers and types of uniglomerular projection neurons innervate the antennal lobe following various perturbations. We propose that this surprising difference in plasticity for these brain lineages is adaptive, given their respective roles as parallel processors versus discrete carriers of olfactory information.
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An often-overlooked aspect of neural plasticity is the plasticity of neuronal composition, in which the numbers of neurons of particular classes are altered in response to environment and experience. The Drosophila brain features several well-characterized lineages in which a single neuroblast gives rise to multiple neuronal classes in a stereotyped sequence during development [1]. We find that in the intrinsic mushroom body neuron lineage, the numbers for each class are highly plastic, depending on the timing of temporal fate transitions and the rate of neuroblast proliferation. For example, mushroom body neuroblast cycling can continue under starvation conditions, uncoupled from temporal fate transitions that depend on extrinsic cues reflecting organismal growth and development. In contrast, the proliferation rates of antennal lobe lineages are closely associated with organismal development, and their temporal fate changes appear to be cell cycle-dependent, such that the same numbers and types of uniglomerular projection neurons innervate the antennal lobe following various perturbations. We propose that this surprising difference in plasticity for these brain lineages is adaptive, given their respective roles as parallel processors versus discrete carriers of olfactory information.