992 resultados para Microbial translocation


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Background: Severe dengue virus (DENV) disease is associated with extensive immune activation, characterized by a cytokine storm. Previously, elevated lipopolysaccharide (LPS) levels in dengue were found to correlate with clinical disease severity. In the present cross-sectional study we identified markers of microbial translocation and immune activation, which are associated with severe manifestations of DENV infection. Methods: Serum samples from DENV-infected patients were collected during the outbreak in 2010 in the State of Sa˜o Paulo, Brazil. Levels of LPS, lipopolysaccharide binding protein (LBP), soluble CD14 (sCD14) and IgM and IgG endotoxin core antibodies were determined by ELISA. Thirty cytokines were quantified using a multiplex luminex system. Patients were classified according to the 2009 WHO classification and the occurrence of plasma leakage/shock and hemorrhage. Moreover, a (non-supervised) cluster analysis based on the expression of the quantified cytokines was applied to identify groups of patients with similar cytokine profiles. Markers of microbial translocation were linked to groups with similar clinical disease severity and clusters with similar cytokine profiles. Results: Cluster analysis indicated that LPS levels were significantly increased in patients with a profound pro-inflammatory cytokine profile. LBP and sCD14 showed significantly increased levels in patients with severe disease in the clinical classification and in patients with severe inflammation in the cluster analysis. With both the clinical classification and the cluster analysis, levels of IL-6, IL-8, sIL-2R, MCP-1, RANTES, HGF, G-CSF and EGF were associated with severe disease. Conclusions: The present study provides evidence that both microbial translocation and extensive immune activation occur during severe DENV infection and may play an important role in the pathogenesis.

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Systemic immune activation, a major determinant of HIV disease progression, is the result of a complex interplay between viral replication, dysregulation of the immune system, and microbial translocation due to gut mucosal damage. While human genetic variants influencing HIV viral load have been identified, it is unknown to what extent the host genetic background contributes to inter-individual differences in other determinants of HIV pathogenesis like gut damage and microbial translocation. Using samples and data from 717 untreated participants in the Swiss HIV Cohort Study and a genome-wide association study design, we searched for human genetic determinants of plasma levels of intestinal fatty-acid binding protein (I-FABP/FABP2), a marker of gut damage, and of soluble sCD14 (sCD14), a marker of LPS bioactivity and microbial translocation. We also assessed the correlations between HIV viral load, sCD14 and I-FABP. While we found no genome-wide significant determinant of the tested plasma markers, we observed strong associations between sCD14 and both HIV viral load and I-FABP, shedding new light on the relationships between processes that drive progression of untreated HIV infection.

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Trabalho Final do Curso de Mestrado Integrado em Medicina, Faculdade de Medicina, Universidade de Lisboa, 2014

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L’infection à VIH-1 est associée à une forte déplétion des lymphocytes T CD4+ à polarisation Th17 au niveau des tissus lymphoïdes associés aux muqueuses intestinales (GALT, gut-associated lymphoid tissues). Ceci conduit à la translocation microbienne, qui est une cause d’activation immunitaire chronique et de progression de la maladie. Les cellules épithéliales (CE) jouent un rôle critique dans le maintien de l’intégrité et de l’homéostasie au niveau des muqueuses intestinales via le recrutement des cellules de l’immunité innée (e.g., neutrophiles) et adaptative (e.g., cellules Th17). Les neutrophiles produisent des molécules antivirales (e.g., défensines-) et ont la capacité de limiter la réplication virale au niveau des muqueuses. Les cellules Th17 jouent un double rôle lors de l’infection à VIH. Elles contribuent d’une part à la défense contre différents pathogènes opportunistes en augmentant, via la production d’IL-17, la capacité des CE à attirer les cellules Th17 et les neutrophiles. D’autre part, les cellules Th17 jouent un rôle délétère en tant que cibles de réplication virale et sources de cytokines pro-inflammatoires. La fréquence des cellules Th17 est diminuée dans les GALT mais pas dans les poumons des patients infectés par le VIH, suggérant qu’il existe des mécanismes différents par lesquels les cellules Th17 sont recrutées vers ces sites anatomiques. Nous avons testé l’hypothèse selon laquelle le VIH interfère avec la capacité des CE intestinales et non pas pulmonaires à produire des chimiokines (CK) responsables de l’attraction des cellules Th17 et des neutrophiles. Nous avons démontré que les CE intestinales et pulmonaires produisent des CK spécifiques pour les cellules Th17 (CCL20) et les neutrophiles (CXCL8) en réponse à des stimuli pro-inflammatoires tels que l’IL-1 et le TNF-. Le TNF- agit en synergie avec l’IL-17, un « signal de danger » récemment identifié, et augmente la capacité des CE intestinales mais pas pulmonaires à produire la chimiokine CCL20. Cette synergie s’explique par l’augmentation préférentielle de l’expression du récepteur à l’IL-17 à la surface des CE intestinales suite à la stimulation par le TNF-. L’exposition au VIH n’affecte pas la production de CCL20 et de CXCL8 par les CE intestinales, mais altère la capacité des CE alvéolaires à produire ces chimiokines en accord avec la permissivité sélective de ces dernières à l’infection par le VIH. En conclusion, nos résultats démontrent que (i) le VIH n’interfère pas directement avec la capacité des CE intestinales à recruter des cellules Th17 et des neutrophils et que (ii) la production de CCL20 par ces cellules est dépendantes de la synergie entre le TNF- et l’IL-17. Ainsi, la déplétion des cellules Th17 et la pénurie en IL-17 dans les GALT des sujets infectés pourrait causer de façon préférentielle des altérations fonctionnelles au niveau des CE intestinales, se traduisant par l’altération du recrutement des cellules Th17 en réponse au CCL20.

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ANTECEDENTES. La mortalidad neonatal se debe principalmente a procesos infecciosos y a prematurez. Se ha sugerido que el lavado corporal total con clorhexidina podría reducir la mortalidad neonatal relacionada con infección. No existen revisiones sistemáticas que exploren la eficacia de esta intervención. Objetivo. Evaluar la eficacia y seguridad de la limpieza corporal total con clorhexidina en la prevención de las infecciones asociadas al cuidado de la salud en neonatos de alto riesgo hospitalizados en cuidado intensivo neonatal. Metodología. Se realizó una revisión sistemática de la literatura. La búsqueda se hizo a través de las bases de datos Medline, Embase, LilaCS, Cochrane library y el registro de ensayos clínicos del Instituto Nacional de Salud de Estados Unidos. Se incluyeron ensayos clínicos publicados en los últimos 15 años hasta el 30 de enero del 2015. Las variables cualitativas se estimaron mediante OR o RR con sus IC95%. Las variables cuantitativas mediante diferencias de promedios o diferencias estandarizadas de promedios con sus IC95%. Resultados: Se incluyeron 3 estudios en el análisis cualitativo y cuantitativo. No se encontró evidencia concluyente que permita recomendar el uso de la limpieza corporal total con clorhexidina en los recién nacidos hospitalizados en cuidado intensivo neonatal. Conclusión: No existe evidencia que permita concluir que la limpieza corporal total con clorhexidina al 0.25% es mejor respecto a otras intervenciones en la prevención de sepsis neonatal asociada al cuidado de la salud . Es una intervención segura sin efectos adversos significativos.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Thesis (Ph.D.)--University of Washington, 2016-06

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While nitrogen is critical for all plants, they are unable to utilize organically bound nitrogen in soils. Therefore, the majority of plants obtain useable nitrogen through nitrogen fixing bacteria and the microbial decomposition of organic matter. In the majority of cases, symbiotic microorganisms directly furnish plant roots with inorganic forms of nitrogen. More than 80% of all land plants form intimate symbiotic relationships with root colonizing fungi. These common plant/fungal interactions have been defined largely through nutrient exchange, where the plant receives limiting soil nutrients, such as nitrogen, in exchange for plant derived carbon. Fungal endophytes are common plant colonizers. A number of these fungal species have a dual life cycle, meaning that they are not solely plant colonizers, but also saprophytes, insect pathogens, or plant pathogens. By using 15N labeled, Metarhizium infected, wax moth larvae (Galleria mellonella) in soil microcosms, I demonstrated that the common endophytic, insect pathogenic fungi Metarhizium spp. are able to infect living soil borne insects, and subsequently colonize plant roots and furnish ts plant host with useable, insect-derived nitrogen. In addition, I showed that another ecologically important, endophytic, insect pathogenic fungi, Beauveria bassiana, is able to transfer insect-derived nitrogen to its plant host. I demonstrated that these relationships between various plant species and endophytic, insect pathogenic fungi help to improve overall plant health. By using 13C-labeled CO2, added to airtight plant growth chambers, coupled with nuclear magnetic resosnance spectroscopy, I was able to track the movement of carbon from the atmosphere, into the plant, and finally into the root colonized fungal biomass. This indicates that Metarhizium exists in a symbiotic partnership with plants, where insect nitrogen is exchanged for plant carbon. Overall these studies provide the first evidence of nutrient exchange between an insect pathogenic fungus and plants, a relationship that has potentially useful implications on plant primary production, soil health, and overall ecosystem stability.

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Objectives: This in vitro study was established to examine whether visfatin thought to be a link between periodontitis and obesity is produced by periodontal ligament (PDL) cells and, if so, whether its synthesis is modulated by microbial and/or biomechanical signals. Materials and methods: PDL cells seeded on BioFlex® plates were exposed to the oral pathogen Fusobacterium nucleatum ATCC 25586 and/or subjected to biomechanical strain for up to 3 days. Gene expression of visfatin and toll-like receptors (TLR) 2 and 4 was analyzed by RT-PCR, visfatin protein synthesis by ELISA and immunocytochemistry, and NFκB nuclear translocation by immunofluorescence. Results: F. nucleatum upregulated the visfatin expression in a dose- and time-dependent fashion. Preincubation with neutralizing antibodies against TLR2 and TLR4 caused a significant inhibition of the F. nucleatum-upregulated visfatin expression at 1 day. F. nucleatum stimulated the NFκB nuclear translocation. Biomechanical loading reduced the stimulatory effects of F. nucleatum on visfatin expression at 1 and 3 days and also abrogated the F. nucleatum-induced NFκB nuclear translocation at 60 min. Biomechanical loading inhibited significantly the expression of TLR2 and TLR4 at 3 days. The regulatory effects of F. nucleatum and/or biomechanical loading on visfatin expression were also observed at protein level. Conclusions: PDL cells produce visfatin, and this production is enhanced by F. nucleatum. Biomechanical loading seems to be protective against the effects of F. nucleatum on visfatin expression. Clinical relevance: Visfatin produced by periodontal tissues could play a major role in the pathogenesis of periodontitis and the interactions with obesity and other systemic diseases. © 2013 Springer-Verlag Berlin Heidelberg.

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OBJECTIVES This in vitro study was established to examine whether visfatin thought to be a link between periodontitis and obesity is produced by periodontal ligament (PDL) cells and, if so, whether its synthesis is modulated by microbial and/or biomechanical signals. MATERIALS AND METHODS PDL cells seeded on BioFlex® plates were exposed to the oral pathogen Fusobacterium nucleatum ATCC 25586 and/or subjected to biomechanical strain for up to 3 days. Gene expression of visfatin and toll-like receptors (TLR) 2 and 4 was analyzed by RT-PCR, visfatin protein synthesis by ELISA and immunocytochemistry, and NFκB nuclear translocation by immunofluorescence. RESULTS F. nucleatum upregulated the visfatin expression in a dose- and time-dependent fashion. Preincubation with neutralizing antibodies against TLR2 and TLR4 caused a significant inhibition of the F. nucleatum-upregulated visfatin expression at 1 day. F. nucleatum stimulated the NFκB nuclear translocation. Biomechanical loading reduced the stimulatory effects of F. nucleatum on visfatin expression at 1 and 3 days and also abrogated the F. nucleatum-induced NFκB nuclear translocation at 60 min. Biomechanical loading inhibited significantly the expression of TLR2 and TLR4 at 3 days. The regulatory effects of F. nucleatum and/or biomechanical loading on visfatin expression were also observed at protein level. CONCLUSIONS PDL cells produce visfatin, and this production is enhanced by F. nucleatum. Biomechanical loading seems to be protective against the effects of F. nucleatum on visfatin expression. CLINICAL RELEVANCE Visfatin produced by periodontal tissues could play a major role in the pathogenesis of periodontitis and the interactions with obesity and other systemic diseases.

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The control of cellular water flow is mediated by the aquaporin (AQP) family of membrane proteins. The family's structural features and the mechanism of selective water passage through the AQP pore are established, but there remains a gap in our knowledge of how water transport is regulated. Two broad possibilities exist. One is controlling the passage of water through the AQP pore, but this has only been observed as a phenomenon in some plant and microbial AQPs. An alternative is controlling the number of AQPs in the cell membrane. Here we describe a novel pathway in mammalian cells whereby a hypotonic stimulus directly induces intracellular calcium elevations, through transient receptor potential channels, that trigger AQP1 translocation. This translocation, which has a direct role in cell volume regulation, occurs within 30s and is dependent on calmodulin activation and phosphorylation of AQP1 at two threonine residues by protein kinase C. This direct mechanism provides a rationale for the changes in water transport that are required in response to constantly-changing local cellular water availability. Moreover, since calcium is a pluripotent and ubiquitous second messenger in biological systems, the discovery of its role in the regulation of AQP translocation has ramifications for diverse physiological and pathophysiological processes, as well as providing an explanation for the rapid regulation of water flow that is necessary for cell homeostasis.

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There is a growing awareness that gut commensal metabolites play a major role in host physiology and indeed the pathophysiology of several illnesses. The composition of the microbiota largely determines the levels of tryptophan in the systemic circulation and hence, indirectly, the levels of serotonin in the brain. Some microbiota synthesize neurotransmitters directly, e.g., gamma-amino butyric acid, while modulating the synthesis of neurotransmitters, such as dopamine and norepinephrine, and brain-derived neurotropic factor (BDNF). The composition of the microbiota determines the levels and nature of tryptophan catabolites (TRYCATs) which in turn has profound effects on aryl hydrocarbon receptors, thereby influencing epithelial barrier integrity and the presence of an inflammatory or tolerogenic environment in the intestine and beyond. The composition of the microbiota also determines the levels and ratios of short chain fatty acids (SCFAs) such as butyrate and propionate. Butyrate is a key energy source for colonocytes. Dysbiosis leading to reduced levels of SCFAs, notably butyrate, therefore may have adverse effects on epithelial barrier integrity, energy homeostasis, and the T helper 17/regulatory/T cell balance. Moreover, dysbiosis leading to reduced butyrate levels may increase bacterial translocation into the systemic circulation. As examples, we describe the role of microbial metabolites in the pathophysiology of diabetes type 2 and autism.